SlideShare a Scribd company logo
1 of 6
Download to read offline
TELKOMNIKA Telecommunication, Computing, Electronics and Control
Vol. 18, No. 5, October 2020, pp. 2606~2611
ISSN: 1693-6930, accredited First Grade by Kemenristekdikti, Decree No: 21/E/KPT/2018
DOI: 10.12928/TELKOMNIKA.v18i5.13526  2606
Journal homepage: http://journal.uad.ac.id/index.php/TELKOMNIKA
The options in remote phosphor structure for better white
LEDs color quality
Nguyen Thi Phuong Loan1
, Nguyen Doan Quoc Anh2
1
Faculty of Fundamental 2, Posts and Telecommunications Institute of Technology, Vietnam
2
Power System Optimization Research Group, Faculty of Electrical and Electronics Engineering,
Ton Duc Thang University, Vietnam
Article Info ABSTRACT
Article history:
Received Jul 6, 2019
Revised Mar 1, 2020
Accepted Mar 18, 2020
The WLEDs configuration with remote phosphor layers has higher
luminescent performance than WLEDs with dispense coating or conformal
coating and is applied for many modern devices. However, managing
the chromatic performance of lighting structure with remote phosphor
materials is a challenging objective that demands more research. This has
inspired the usage of multi phosphor configurations with distance in between
the layers to improve color quality. The results of this manuscript can support
the manufacturers in choosing the optimal configuration for optical
performance in LEDs devices with more than one phosphor material.
The simulated model used in the experments is 6500 K CCT WLEDs, which
results show the triple-layers structure is more favorable in terms of color
quality and light output. Besides, a notable reduction occurs in color
deviation means that chromatic stability is also enhanced in WLEDs with
three phosphor layers. Through experimental results, which were confirmed
by the Mie-scattering theory, this research offers valuable approach and
details to produce better WLEDs.
Keywords:
Color rendering index
Dual-layer phosphor
Luminous efficacy
Mie-scattering theory
Remote-phosphor
Triple-layer phosphor
This is an open access article under the CC BY-SA license.
Corresponding Author:
Nguyen Doan Quoc Anh,
Power System Optimization Research Group,
Faculty of Electrical and Electronics Engineering,
Ton Duc Thang University,
Ho Chi Minh City, Vietnam.
Email: nguyendoanquocanh@tdtu.edu.vn
1. INTRODUCTION
Lighting devices using LEDs and phosphor material to fabricate white light (WLEDs) contains
many remarkable traits such as power saving, cost effective, color consistency, and smaller in size, are
perceived as a potential light source [1-4]. The WLEDs work base on the additive color principle, for
example, the combination between the yellow light of phosphor with blue light comes from a blue chip [5].
If the lighting efficiency of WLEDs improves, there is a good chance that they are usable in solid-state
lighting [6]. The WLEDs are often created by diffusing the phosphor particles onto the LEDs to form a layer.
This process will mix the transparent encapsulated resin and the phosphor powder then dispersed on
the phosphor package. The advantage of this method is the control over the thickness of the phosphor layer
and lowered cost, however, the product is not a high-quality WLEDs [7-9]. As a result, the conformal coating
method is a replacement in this situation. The purpose of this method is to distribute colors uniformly
TELKOMNIKA Telecommun Comput El Control 
The options in remote phosphor structure for better white LEDs color quality (Nguyen Thi Phuong Loan)
2607
and improve the angular color uniformity of CCT [10-13]. However, the light output of conformal coating
configuration is weakened by backscattering effect, therefore, the luminous efficiency unable to reach
the best result. The approach of isolating the components of the remote phosphor WLEDs has already
been mentioned in prior researches with different variations [14-16]. For example, the usage of epoxy
hemispherical glass coated with phosphor on the inside amplifies the extracted light by enhancing internal
reflection of the structure [17]. Not to mention the luminous efficiency also benefits from the air-gap
embedded structure because of the downward light reflection characteristic [18-20]. It is obvious that
besides luminous efficacy (LE), other chromatic quality indicators such as color stability, rendering ability
are also critical targets to WLEDs. Therefore, modifications such as adding more phosphor material to
the remote structure are expected to bring desirable alterations and improve these optical properties of
WLEDs [21-23]. The arrangement of phosphor layers in remote structure with two phosphor materials
is yellow phosphor below red or green phosphor, while in structure with three phosphor layers the red
phosphor is at the top below are green phosphor and yellow phosphor [24, 25]. The concentration of
phosphor layer is also an impactful element alongside model arrangement. The additional phosphor materials
can cause the re-absorption in the phosphor layer and leads to lower luminous efficiency, particularly in low
CCTs. In order to address this problem, the loss of light due to backscattering and reflection must be lowered
and the emission of blue and yellow lights needs to improve. Choosing one single remote phosphor structures
to improve optical properties for WLEDs from all of the available structures above is a difficult task for
the manufacturer. Therefore, this research serves the purpose of offering manufacturers with an optimal
choice to enhance WLEDs quality to their desire. The results of this research will demonstrate detailed plans
to develop specific optical features.
2. SIMULATION DETAIL
The WLEDs equipped with 9 LED chips inside are used for reference in this research. Each blue at
peak wavelength emits an output of 1.16W. Figure 1 (a) demonstrate the traditional structure (Y) contains
a layer of yellow phosphor YAG:Ce3+
put on top of LEDs chip. Figure 1 (b) is the remote phosphor structure
(YR) with two layers, one is red phosphor layer LiAl5O8:Fe3+
and the other below is yellow
YAG:Ce3+
phosphor layer. The other remote phosphor (YG) with double layers with the green
(Ce,Tb)MgAl11O19:Ce:Tb phosphor placed above LED chips appears in Figure 1 (c). The only triple-layer
remote structure with a green phosphor (Ce,Tb)MgAl11O19:Ce:Tb in between two other phosphor layer is
visualized in Figure 1 (d).
(a) (b) (c) (d)
Figure 1. Illustration of multi-layer phosphor structures of white LEDs: (a) Single-layer phosphor,
Dual-layer remote phosphor with YR (b) and YG (c), and (d) triple-layer phosphor
The first idea of this research is using a green phosphor layer (Ce,Tb)MgAl11O19:Ce:Tb to enhance
the green radiation of WLEDs and promote the emitted light from the structure. The second idea revolves
around employing a red phosphor layer LiAl5O8:Fe3+
to stimulate an increase in CRI and CQS with red
particles from the phosphor. The article elaborates in details the extent which the presence of LiAl5O8:Fe3+
affects the WLEDs optical properties according to the phosphor concentration. With remarkable features
including high quantum efficiency and high temperature consistency, the phosphor particles that emits
yellow-green light such as (Ce,Tb)MgAl11O19:Ce:Tb and LiAl5O8:Fe3+
have acquired much attention. That is
the reason why (Ce,Tb)MgAl11O19:Ce:Tb and LiAl5O8:Fe3+
are especially used in heavy duty and high
durability fluorescent lamps. (Ce,Tb)MgAl11O19:Ce:Tb at peak wavelength of 546 nm emits a green light.
The presence of the ion Eu2+
benefits (Ce,Tb)MgAl11O19:Ce:Tb by enhancing the luminous efficacy.
As the same time, LiAl5O8:Fe3+
emits red light at the peak wavelength of 681 nm. The ideal setup that allow
these phosphors to excel is the one that can adjust phosphor radiation and light chips radition to discharge at
the same wavelengths. This means the phosphor materials and the chip should have as much common
emission wavelengths in their spectra as possible. The range of LiAl5O8:Fe3+
absorption spectrum covers
from 320 nm to 480 nm is an enhancement in collecting chromatic radiation out of other wavelength ranges
such as yellow since the LED chip is not the only component that emits light. The green phosphor
 ISSN: 1693-6930
TELKOMNIKA Telecommun Comput El Control, Vol. 18, No. 5, October 2020: 2606 - 2611
2608
(Ce,Tb)MgAl11O19:Ce:Tb with a vast absorption spectroscopy, which ranges from 200 nm to 400 nm, is also
an appropriate material. Before conducting the stimulation of (Ce,Tb)MgAl11O19:Ce:Tb and LiAl5O8:Fe3+
,
the input numbers must be measured correctly through different experiments including the concentration of
phosphor, size of phosphor particles, excitation spectrum, absorption spectrum, phosphor emission spectrum.
The amount of phosphor and their particles magnitude out of the five indicators are the required factors to
obtain the highest values in color quality and luminescent flux for WLEDs. The indexes related to the spectra
are constants. As the results from previous research suggest, the diameters for phosphor particles revolve
around an average of 14.5 µm.
The density of each phosphor layer in the remote structure is predetermined at 0.08 mm.
The average correlated color temperature (ACCT) is an important index that must be stabilized by changing
the concentration of YAG:Ce3+
. The concentration of YAG:Ce3+
is adjusted in every phosphor configuration
to stabilize the ACCT while performing the experimentes. This form a distinction in the scattering
characteristic of the LEDs resulting in a variety of differences in optical properties. The percentages of
yellow-emitting phosphor YAG:Ce3+
in each remote phosphor structure are presented in Figure 2
From Figure 2, it appears that yellow-emitting YAG:Ce3+
phosphor percentage among the phosphor
structures is different with the Y structure has the most yellow phosphor and YRG structure the least.
Regarding the same ACCT but with the remote phosphor structure, if the concentration of YAG:Ce3+
rises up
the backscattering effect also increases which damages the luminous flux. On the other hand, when
the concentration level of YAG:Ce3+
is high, the imbalance among the three primary colors contribute to
the fabrication of white light: red, yellow and green will appear and causes the color quality to decrease.
Therefore, preventing light loss and equalize the proportions of chromatic phosphor in the structure can lead
to enhancement in resulted light and chromatic output. The YRG structure which has three chromatic
phosphor layers that can effectively balance the primary colors, enhance the color rendering ability with red
particles, and improve color uniformity as well as lumen output with green particles, seems to be the ideal
solution. So is the phosphor structure containing three distinct chromatic layers the optimal configuration in
controlling optical properties? To verify this theory, we need to examine other crucial aspects of an lighting
configuration such as the emission wavelength range, which is demonstrated in Figure 3.
The differences between emission spectra of remote phosphor structures are definitely obvious.
The Y structure with the lowest intensity index among others means that the emission spectrum from this
structure is at minumum. In contrast, YRG structure, with emission spectrum from 380-780 nm, produces the
most intensity. The YG and YR structures intensity depends on the wavelength range, from 400-500 nm
spectral intensity in YG is higher than YR, therefore YG emission spectrum is also greater in comparision to
YR. On the other hand, YR in the band from 650-750 nm has higher intensity, which means the color
rendering of YR in this emission spectrum is more effective than YG. In order to approve all the conclusions
above, part 3 will focus on testing and giving results.
Figure 2. YAG:Ce3+
concentration corresponding to
the remote phosphor confifurations
Figure 3. Emission spectra of
the phosphor configurations
3. RESULTS AND DISCUSSION
Figure 4 demonstrates the measured color rendering index (CRI) of all lighting configurations. It is
obvious that YR structure achieves highest CRI. This is an important result when it comes to improving CRI
in remote phosphor structures. Although controlling the CRI in high ACCT is exceptionally difficult, the YR
structure can undertake this task. The YR structure with red phosphor layer LiAl5O8:Fe3+
that provide
the structure with additional red particles achieves better color rending index (CRI). YRG is second place in
term of CRI achieved. Meanwhile, CRI produced by YG structure is the lowest. This result suggests that
applying YR structure to serial manufacturing of WLEDs with CRI as the main goal is the optimal choice.
The CRI is a popular quality indicator but not enough to conclude the performance of lighting device just
TELKOMNIKA Telecommun Comput El Control 
The options in remote phosphor structure for better white LEDs color quality (Nguyen Thi Phuong Loan)
2609
based on CRI. The CQS, which examines three features including CRI, observer choice, and color
coordination, has risen up and were applied for quality assessment in recent research. With the coverage over
these three aspects, CQS seemingly turns out as a vital point and is regarded as the most crucial indicator to
evaluate color quality. CQS values of the configurations were calculated and presented in Figure 5. If CRI is
highest in YR structure then CQS is reaches its peak in YRG structure which is a result of better balance
between chromatic lights yellow, red and green. The high CQS value ensure the good chromatic performance
of WLEDs. Meanwhile, the Y structure with poor CQS in comparision to other structures is struggling to
manage the chromatic attribute of emitted light due to the lack of chromatic sources, however, this structure
presents great value to the lumen output. Despite the drawback in color quality, Y structure still excels in
manufacturing due to simpler producing process compare to other structure and relatively low cost.
Based on the results in Figure 5, the YRG structure is a perfect fit for WLEDs with high color
quality demands. However, does the increase in color quality affect the luminous flux? A comparison
between the first layer and second layer was used to answer the previous question. The mathematical
equation to calculate the blue and yellow light yielded from WLEDs with two phosphor layers is presented in
this part. The results provide valuable information for better understanding of WLEDs mechanism and
enhancing methods. The amount of emitted blue light and modified yellow light in single phosphor package
with 2h phosphor density are shown below:
𝑃𝐵1 = 𝑃𝐵0 × 𝑒−2𝛼 𝐵1ℎ
(1)
𝑃𝑌1 =
1
2
𝛽1×𝑃𝐵0
𝛼 𝐵1−𝛼 𝑌1
(𝑒−2𝛼 𝑌1ℎ
− 𝑒−2𝛼 𝐵1ℎ
) (2)
In dual-phosphor remote WLEDs with an h phosphor layer density, the amount of emitted blue light and
modified yellow light are expressed as:
𝑃𝐵2 = 𝑃𝐵0 × 𝑒−2𝛼 𝐵2ℎ
(3)
𝑃𝑌2 =
1
2
𝛽2×𝑃𝐵0
𝛼 𝐵2−𝛼 𝑌2
(𝑒−2𝛼 𝑌2ℎ
− 𝑒−2𝛼 𝐵2ℎ
) (4)
Figure 4. Color rendering indexes of
the phosphor configurations
Figure 5. Color quality scale of
phosphor configurations
The h denotes phosphor density (mm). The subscript “1” indicates WLEDs with single phosphor
structure and “2” indicates WLEDs with dual-phosphor remote structure. The β stands for the rate of internal
conversion from blue transforms to yellow light. The reflection coefficient of the yellow light is illustrated
by γ. The radiation intensities of LED chip including the blue light intensity (PB) and yellow light intensity
(PY) are represented by PB0. The blue and yellow light energy lost during the spreading process in
the phosphor layer are indicated by αB; αY respectively. The WLEDs in double-layer phosphor structures have
their luminous efficacy improved significantly in comparison with the single layer structure ones:
(𝑃𝐵2+𝑃𝑌2)−(𝑃𝐵1+𝑃𝑌1)
𝑃𝐵1+𝑃𝑌1
> 0 (5)
The utilization of the Mie-theory is to inspect the amount of light scatters from phosphor particles.
Besides, the Mie theory also contributes to the calculation of scattering cross section Csca for spherical
particles. The Lambert-Beer law measures the light power emitted:
I = I0 exp(-µextL) (6)
 ISSN: 1693-6930
TELKOMNIKA Telecommun Comput El Control, Vol. 18, No. 5, October 2020: 2606 - 2611
2610
I0, is the incident radiation energy, while the density of phosphor material is L (mm) and µext for the extinction
coefficient, which can be calculated with the formula: µext = Nr.Cext, with Nr the number density distribution
of particles (mm-3
) and the extinction cross-section of phosphor particles Cext (mm2
).
From the results of (5), the multi-layer phosphor structure is clearly more beneficial to the light
output capacity than the structure with only one layer. This finding is verified by the results of measured
luminous fluxes in Figure 6. According to the graph, Y structure has the lowest amount of emitted light
among structures. YRG structure, on the contrary, achieves the highest value in luminous flux. This clear all
the questions revolve around the impact of YRG structure on the luminous flux since it has the best color
quality. The YG structure is the second best in terms of lumen output due to the addition of green light
component from the green (Ce,Tb)MgAl11O19:Ce:Tb phosphor. The luminous flux within the wavelength
from 500-600 nm benefit from the green phosphor (Ce,Tb)MgAl11O19:Ce:Tb. It is obvious that
the intensity of YRG structure in these wavelengths is greater than YG and Y. Therefore, YAG:Ce3+
concentration level in YRG structure is dropped to the lowest among all structures to maintain ACCT and
the backscattering effects also decrease after the concentration of YAG:Ce3+
in YRG declined. The blue light
from the blue chip will then easily passes through YAG:Ce3+
layer and gets to other layers. It can also be
referred that the YRG structure increase the amount of light transmitted from the chips. This results in YRG
having the highest spectral intensity while in the same emission spectrum as other structures.
As a result, it is possible to choose the YRG structure as an enhancement option for lighting devices
that need to improve both color quality and light output. Beside other aspects, color uniformity is another
deciding factor to the color of light that can be omitted. As of the solutions for better color uniformity, some
used phosphor particles that enhance the scattering effect such as TiO2, ZnO,... or applied the conformal
coating method. The color quality can be be improved, yet lumen output would decline when the mentioned
methods are implemented. Therefore, adding green (Ce,Tb)MgAl11O19:Ce:Tb phosphor and red LiAl5O8:Fe3+
phosphor will enhance the chromatic performance with the support from green and red scattering properties.
The back-scaterring effect that lowers light output is also lessen if remote phosphor structure were applied.
Beside the mechanism of the structure, the component particular such as phosphor concentration is also
important to enable WLEDs to the highest potential. The influence of phosphor concentration can be
confirmed by Lambert-Beer law in (6). Figure 7 expresses the chromatic deviation in the structures, which
shows that YRG is the structure with the lowest index regarding this indicator. The smaller the color
deviation, the better color uniformity. This resulted from the scattering properties of the additional phosphor
layers in YRG structure increase the scattering events in WLEDs and through that strengthen color
uniformity. The down side of more scattering eventsis the reduction of light output. This small decline in
light output can be compensated with the amount of emitted light increased as the back-scattering is
managed. In conclusion, the YRG structure has the best performance in chromatic homogeneity and
lumenoutput while Y structure is the oppsite due to color deviation and being a single-layer structure.
Figure 6. Luminous efficacy of
phosphor configurations
Figure 7. Corelated color temperature deviation
(ΔCCT) of the remote phosphor configurations
4. CONCLUSION
The research aim for a practical solution to enhance optical properties by analyzing the lighting
performance of Y, YG, YR and YRG structures at ACCT of 6600 K. Green (Ce,Tb)MgAl11O19:Ce:Tb
phosphor and red LiAl5O8:Fe3+
phosphor are used for the simulation processes. Aside from the experiemnts
and theories, the the Mie theory and the Lambert-Beer law were also applied to verified the results.
As observed from the results, green (Ce,Tb)MgAl11O19:Ce:Tb phosphor benefits the chromatic uniformity
and lumen output with additional green particles, which is shown by the better values of mentioned in YG
structure in comparision to YR structure. The red LiAl5O8:Fe3+
phosphor, on the other hand, improves CRI
TELKOMNIKA Telecommun Comput El Control 
The options in remote phosphor structure for better white LEDs color quality (Nguyen Thi Phuong Loan)
2611
and CQS using red phosphor particles, which is verified by greater CRI and CQS in YR than YG. The YRG
structure with two chromatic phosphor layers added in can effectively manage the balance of yellow, green
and red which contributes to better color quality. Moreover, the reduction of backscattering effect in YRG
induces a significant development in the luminous flux of this structure. Evidently, the highest luminous flux
is also in the YRG structure. Based on the results of this study, producers can now choose a suitable structure
to serve the purpose of enhancing the quality of WLEDs.
REFERENCES
[1] Bindai S., Annapurna K., Tarafder A., “Realization of phosphor-in-glass thin film on soda-lime silicate
glass with low sintering temperature for high color rendering white LEDs,” Applied Optics, vol. 58, no. 9,
pp. 2372-2381, 2019.
[2] Hao J., Ke H. L., Jing L., Sun Q., Sun R. T., “Prediction of lifetime by lumen degradation and color shift for LED
lamps, in a non-accelerated reliability test over 20,000  h.,” Applied Optics, vol. 58, no. 7, pp. 1855-1861. 2019;
[3] David A., Fini P. T., Houser K. W., et al., “Development of the IES method for evaluating the color rendition of
light sources,” Optics Express, vol. 23, no. 12, pp. 15888-15906, 2015.
[4] Lee H. K., Cho H. K., Byun C. W., et al., “Color-tunable organic light-emitting diodes with vertically stacked blue,
green, and red colors for lighting and display applications,” Optics Express, vol. 26, no. 14, pp. 18351-18361, 2018.
[5] Lin D., Ho Chen W. H., Liu J., et al., “Silicon Solar Cells Efficiency Enhanced in NIR Band by Coating Plasmonics
ITO-and UC Phosphors-Particles Layers on Back-Side Surface Using Spin-On Film Deposition,” in Conference on
Lasers and Electro-Optics, OSA Technical Digest. Optical Society of America, paper ATh1I.4., 2019.
[6] Y. Yu, C. Cao, Z. Wu, et al., “Improving the color-rendering index of a tandem warm white organic light-emitting
device by employing a simple fabrication process,” Optics Letters, vol. 44, no. 4, pp. 931-934, 2019.
[7] W. Zhang, W. Yang, P. Zhong, et al., “Spectral optimization of color temperature tunable white LEDs based on perovskite
quantum dots for ultrahigh color rendition,” Optical Materials Express, vol. 7, no. 9, pp. 3065-3076, 2017.
[8] Yuce H., Guner T., Balci S., Demir M. M., “Phosphor-based white LED by various glassy particles: control over
luminous efficiency,” Optics Letters, vol. 44, no. 3, pp. 479-482, 2019.
[9] Wang W., Zhu P., “Red photoluminescent Eu3+-doped Y2O3 nanospheres for LED-phosphor applications:
Synthesis and characterization,” Optics Express, vol. 26, no. 26, pp. 34820-34829, 2018.
[10] Wei T., Bo W., Yan C., et al., “Single Pr3+-activated high-color-stability fluoride white-light phosphor for
white-light-emitting diodes,” Optical Materials Express, vol. 9, no. 1, pp. 223-233, 2019.
[11] Dwivedi A., Kumar D., Bahadur Rai S. B., “Monochromatic NIR UC emission in Tm3+/Yb3+co-doped GdVO4
phosphor: the effect of the Bi3+ ion concentration and pump power of a diode laser,” Optics Letters, vol. 43,
no. 23, pp. 5785-5788, 2018.
[12] Li J. S., Tang Y., Li Z. T., et al., “High efficiency solid–liquid hybrid-state quantum dot light-emitting diodes,”
Photonics Research, vol. 6, no. 12, pp. 1107-1115, 2018.
[13] Kim W. J., Kim T. K., Kim S. H., et al., “Improved angular color uniformity and hydrothermal reliability of
phosphor-converted white light-emitting diodes by using phosphor sedimentation,” Optics Express, vol. 26, no. 22,
pp. 28634-28640, 2018.
[14] Fouliard Q. T., Haldar S. D., Ghosh R., Raghavan S., “Modeling luminescence behavior for phosphor thermometry
applied to doped thermal barrier coating configurations,” Applied Optics, vol. 58, no. 13, pp. D68-D75, 2019.
[15] Bakhmet’ev V. V., Malygin V. V., Lebedev L. A., et al., “Synthesis of finely dispersed NaBaPO4:Eu2+ phosphors and
structural investigation of their centers of luminescence,” Journal of Optical Technology, vol. 84, no. 9, pp. 642-646, 2017.
[16] Sijbom H. F., Verstraete R., Joos J. J., et al., “K2SiF6:Mn4+ as a red phosphor for displays and warm-white LEDs: a
review of properties and perspectives,” Optical Materials Express, vol. 7, no. 9, pp. 3332-3365, 2017;
[17] Steudel F., Lisec T., Nolte P. W., et al., "Pixelated phosphors for high-resolution and high-contrast white light
sources: erratum,” Optics Express, vol. 27, no. 6, pp. 9097-9098, 2019.
[18] Fond B., Abram C., Pougin M., Beyrau F., “Investigation of the tin-doped phosphor (Sr,Mg)3(PO4)2:Sn2+ for fluid
temperature measurements,” Optical Materials Express, vol. 9, no. 2, pp. 802-818, 2019.
[19] Zhang G., Ding K., He G., Zhong P., “Spectral optimization of color temperature tunable white LEDs
with red LEDs instead of phosphor for an excellent IES color fidelity index,” OSA Continuum, vol. 2, no. 4,
pp. 1056-1064, 2019.
[20] Zhang Z. J., Yang W. C., “Tunable photoluminescence in Ba1-xSrxSi3O4N2: Eu2+/ Ce3+, Li+ solid solution
phosphors induced by linear structural evolution,” Optical Materials Express, vol. 9, no. 4, pp. 1922-1932, 2019.
[21] Moon J. W., Min B. G., Kim J. S., et al., “Optical characteristics and longevity of the line-emitting K2SiF6:Mn4+
phosphor for LED application,” Optical Materials Express, vol. 6, no. 3, pp. 782-792, 2016.
[22] Li B., Annadurai G., Sun L. L., et al., “High-efficiency cubic-phased blue-emitting Ba3Lu2B6O15:Ce3+ phosphors
for ultraviolet-excited white-light-emitting diodes,” Optics Letters, vol. 43, no. 20, pp. 5138-5141, 2018.
[23] Jang J. W., Kim J. S., Kwon H. O., et al., “UV-curable silicate phosphor planar films printed
on glass substrate for white light-emitting diodes,” Optics Letters, vol. 40, no. 16, pp. 3723-3726, 2015.
[24] Dubey A. K., Gupta M., Kumar V., Mehta D. S., “Laser-line-driven phosphor-converted extended white light source
with uniform illumination,” Applied Optics, vol. 58, no. 9, pp. 2402-2407, 2019.
[25] Guan A. X., Mo F. W., Chen P. C., et al., “Photoluminescence Properties and Energy Transfer of 𝐸𝑢3+, 𝐵𝑖3+
Co-Doped 𝐶𝑎9(𝑃𝑂4)7 Phosphors,” Journal of Display Technology, vol. 12, no. 2, pp. 136-142, 2016.

More Related Content

What's hot

Benefits of triple-layer remote phosphor structure in improving color quality...
Benefits of triple-layer remote phosphor structure in improving color quality...Benefits of triple-layer remote phosphor structure in improving color quality...
Benefits of triple-layer remote phosphor structure in improving color quality...TELKOMNIKA JOURNAL
 
Improvement of double-layer phosphor structure WLEDS in color homogeneity and...
Improvement of double-layer phosphor structure WLEDS in color homogeneity and...Improvement of double-layer phosphor structure WLEDS in color homogeneity and...
Improvement of double-layer phosphor structure WLEDS in color homogeneity and...journalBEEI
 
Improving optical properties of remote phosphor LED using green Y2O3:Ho3+ and...
Improving optical properties of remote phosphor LED using green Y2O3:Ho3+ and...Improving optical properties of remote phosphor LED using green Y2O3:Ho3+ and...
Improving optical properties of remote phosphor LED using green Y2O3:Ho3+ and...TELKOMNIKA JOURNAL
 
Dual-layer remote phosphor structure: a novel technique to enhance the color ...
Dual-layer remote phosphor structure: a novel technique to enhance the color ...Dual-layer remote phosphor structure: a novel technique to enhance the color ...
Dual-layer remote phosphor structure: a novel technique to enhance the color ...IJECEIAES
 
The usage of dual-layer remote phosphor configurations in enhancing color qua...
The usage of dual-layer remote phosphor configurations in enhancing color qua...The usage of dual-layer remote phosphor configurations in enhancing color qua...
The usage of dual-layer remote phosphor configurations in enhancing color qua...TELKOMNIKA JOURNAL
 
Y 2 O 3 :Ho 3+ and ZnO:Bi 3+ : a selection for enhancing color quality and ...
Y 2 O 3 :Ho 3+  and ZnO:Bi 3+ : a selection for enhancing  color quality and ...Y 2 O 3 :Ho 3+  and ZnO:Bi 3+ : a selection for enhancing  color quality and ...
Y 2 O 3 :Ho 3+ and ZnO:Bi 3+ : a selection for enhancing color quality and ...IJECEIAES
 
Green-emitting Gd2O2S:Tb3+ and red-emitting Y3Al5O12:Cr3+ phosphors: a suitab...
Green-emitting Gd2O2S:Tb3+ and red-emitting Y3Al5O12:Cr3+ phosphors: a suitab...Green-emitting Gd2O2S:Tb3+ and red-emitting Y3Al5O12:Cr3+ phosphors: a suitab...
Green-emitting Gd2O2S:Tb3+ and red-emitting Y3Al5O12:Cr3+ phosphors: a suitab...TELKOMNIKA JOURNAL
 
The influences of calcium fluoride and silica particles on improving color ho...
The influences of calcium fluoride and silica particles on improving color ho...The influences of calcium fluoride and silica particles on improving color ho...
The influences of calcium fluoride and silica particles on improving color ho...TELKOMNIKA JOURNAL
 
Na3Ce(PO4)2:Tb3+ and Na(Mg2–xMnX)LiSi4O10F2:Mn phosphors: a suitable selectio...
Na3Ce(PO4)2:Tb3+ and Na(Mg2–xMnX)LiSi4O10F2:Mn phosphors: a suitable selectio...Na3Ce(PO4)2:Tb3+ and Na(Mg2–xMnX)LiSi4O10F2:Mn phosphors: a suitable selectio...
Na3Ce(PO4)2:Tb3+ and Na(Mg2–xMnX)LiSi4O10F2:Mn phosphors: a suitable selectio...TELKOMNIKA JOURNAL
 
Excellent color quality of phosphor converted white light emitting diodes wit...
Excellent color quality of phosphor converted white light emitting diodes wit...Excellent color quality of phosphor converted white light emitting diodes wit...
Excellent color quality of phosphor converted white light emitting diodes wit...TELKOMNIKA JOURNAL
 
Excellent luminous flux of WLEDs with flat dual-layer remote phosphor geometry
Excellent luminous flux of WLEDs with flat dual-layer remote phosphor geometryExcellent luminous flux of WLEDs with flat dual-layer remote phosphor geometry
Excellent luminous flux of WLEDs with flat dual-layer remote phosphor geometryTELKOMNIKA JOURNAL
 
The effectiveness of MgCeAl 11 O 19 :Tb phosphor in enhancing the luminous e...
The effectiveness of MgCeAl 11 O 19 :Tb phosphor in enhancing  the luminous e...The effectiveness of MgCeAl 11 O 19 :Tb phosphor in enhancing  the luminous e...
The effectiveness of MgCeAl 11 O 19 :Tb phosphor in enhancing the luminous e...IJECEIAES
 
SrBaSiO 4 :Eu 2+ phosphor: a novel application for improvingthe luminous flu...
SrBaSiO 4 :Eu 2+  phosphor: a novel application for improvingthe luminous flu...SrBaSiO 4 :Eu 2+  phosphor: a novel application for improvingthe luminous flu...
SrBaSiO 4 :Eu 2+ phosphor: a novel application for improvingthe luminous flu...IJECEIAES
 
LaSiO 3 Cl:Ce 3+ ,Tb 3+ and Mg 2 TiO 4 :Mn 4+ : quantum dot phosphors for im...
LaSiO 3 Cl:Ce 3+ ,Tb 3+  and Mg 2 TiO 4 :Mn 4+ : quantum dot phosphors for im...LaSiO 3 Cl:Ce 3+ ,Tb 3+  and Mg 2 TiO 4 :Mn 4+ : quantum dot phosphors for im...
LaSiO 3 Cl:Ce 3+ ,Tb 3+ and Mg 2 TiO 4 :Mn 4+ : quantum dot phosphors for im...IJECEIAES
 
Using SiO 2 nano-particles for better color uniformity and lumen output in 8...
Using SiO 2  nano-particles for better color uniformity and lumen output in 8...Using SiO 2  nano-particles for better color uniformity and lumen output in 8...
Using SiO 2 nano-particles for better color uniformity and lumen output in 8...IJECEIAES
 
The application of green YF3:Er3+,Yb3+ and red MgSr3Si2O8:Eu2+,Mn2+ layers to...
The application of green YF3:Er3+,Yb3+ and red MgSr3Si2O8:Eu2+,Mn2+ layers to...The application of green YF3:Er3+,Yb3+ and red MgSr3Si2O8:Eu2+,Mn2+ layers to...
The application of green YF3:Er3+,Yb3+ and red MgSr3Si2O8:Eu2+,Mn2+ layers to...TELKOMNIKA JOURNAL
 
Ba[Mg2Al2N4]Eu2+ phosphor for enhancing the optical quality of the 6600K CPW-...
Ba[Mg2Al2N4]Eu2+ phosphor for enhancing the optical quality of the 6600K CPW-...Ba[Mg2Al2N4]Eu2+ phosphor for enhancing the optical quality of the 6600K CPW-...
Ba[Mg2Al2N4]Eu2+ phosphor for enhancing the optical quality of the 6600K CPW-...TELKOMNIKA JOURNAL
 
Utilizing CaCO 3 , CaF 2 , SiO 2 , and TiO 2 particles to enhance color hom...
Utilizing CaCO 3 , CaF 2 , SiO 2 , and TiO 2  particles  to enhance color hom...Utilizing CaCO 3 , CaF 2 , SiO 2 , and TiO 2  particles  to enhance color hom...
Utilizing CaCO 3 , CaF 2 , SiO 2 , and TiO 2 particles to enhance color hom...IJECEIAES
 
The effects of ZnO particles on the color homogeneity of phosphor-converted h...
The effects of ZnO particles on the color homogeneity of phosphor-converted h...The effects of ZnO particles on the color homogeneity of phosphor-converted h...
The effects of ZnO particles on the color homogeneity of phosphor-converted h...IJECEIAES
 

What's hot (20)

Benefits of triple-layer remote phosphor structure in improving color quality...
Benefits of triple-layer remote phosphor structure in improving color quality...Benefits of triple-layer remote phosphor structure in improving color quality...
Benefits of triple-layer remote phosphor structure in improving color quality...
 
Improvement of double-layer phosphor structure WLEDS in color homogeneity and...
Improvement of double-layer phosphor structure WLEDS in color homogeneity and...Improvement of double-layer phosphor structure WLEDS in color homogeneity and...
Improvement of double-layer phosphor structure WLEDS in color homogeneity and...
 
Improving optical properties of remote phosphor LED using green Y2O3:Ho3+ and...
Improving optical properties of remote phosphor LED using green Y2O3:Ho3+ and...Improving optical properties of remote phosphor LED using green Y2O3:Ho3+ and...
Improving optical properties of remote phosphor LED using green Y2O3:Ho3+ and...
 
Dual-layer remote phosphor structure: a novel technique to enhance the color ...
Dual-layer remote phosphor structure: a novel technique to enhance the color ...Dual-layer remote phosphor structure: a novel technique to enhance the color ...
Dual-layer remote phosphor structure: a novel technique to enhance the color ...
 
The usage of dual-layer remote phosphor configurations in enhancing color qua...
The usage of dual-layer remote phosphor configurations in enhancing color qua...The usage of dual-layer remote phosphor configurations in enhancing color qua...
The usage of dual-layer remote phosphor configurations in enhancing color qua...
 
Y 2 O 3 :Ho 3+ and ZnO:Bi 3+ : a selection for enhancing color quality and ...
Y 2 O 3 :Ho 3+  and ZnO:Bi 3+ : a selection for enhancing  color quality and ...Y 2 O 3 :Ho 3+  and ZnO:Bi 3+ : a selection for enhancing  color quality and ...
Y 2 O 3 :Ho 3+ and ZnO:Bi 3+ : a selection for enhancing color quality and ...
 
Green-emitting Gd2O2S:Tb3+ and red-emitting Y3Al5O12:Cr3+ phosphors: a suitab...
Green-emitting Gd2O2S:Tb3+ and red-emitting Y3Al5O12:Cr3+ phosphors: a suitab...Green-emitting Gd2O2S:Tb3+ and red-emitting Y3Al5O12:Cr3+ phosphors: a suitab...
Green-emitting Gd2O2S:Tb3+ and red-emitting Y3Al5O12:Cr3+ phosphors: a suitab...
 
The influences of calcium fluoride and silica particles on improving color ho...
The influences of calcium fluoride and silica particles on improving color ho...The influences of calcium fluoride and silica particles on improving color ho...
The influences of calcium fluoride and silica particles on improving color ho...
 
Na3Ce(PO4)2:Tb3+ and Na(Mg2–xMnX)LiSi4O10F2:Mn phosphors: a suitable selectio...
Na3Ce(PO4)2:Tb3+ and Na(Mg2–xMnX)LiSi4O10F2:Mn phosphors: a suitable selectio...Na3Ce(PO4)2:Tb3+ and Na(Mg2–xMnX)LiSi4O10F2:Mn phosphors: a suitable selectio...
Na3Ce(PO4)2:Tb3+ and Na(Mg2–xMnX)LiSi4O10F2:Mn phosphors: a suitable selectio...
 
Excellent color quality of phosphor converted white light emitting diodes wit...
Excellent color quality of phosphor converted white light emitting diodes wit...Excellent color quality of phosphor converted white light emitting diodes wit...
Excellent color quality of phosphor converted white light emitting diodes wit...
 
Excellent luminous flux of WLEDs with flat dual-layer remote phosphor geometry
Excellent luminous flux of WLEDs with flat dual-layer remote phosphor geometryExcellent luminous flux of WLEDs with flat dual-layer remote phosphor geometry
Excellent luminous flux of WLEDs with flat dual-layer remote phosphor geometry
 
The effectiveness of MgCeAl 11 O 19 :Tb phosphor in enhancing the luminous e...
The effectiveness of MgCeAl 11 O 19 :Tb phosphor in enhancing  the luminous e...The effectiveness of MgCeAl 11 O 19 :Tb phosphor in enhancing  the luminous e...
The effectiveness of MgCeAl 11 O 19 :Tb phosphor in enhancing the luminous e...
 
SrBaSiO 4 :Eu 2+ phosphor: a novel application for improvingthe luminous flu...
SrBaSiO 4 :Eu 2+  phosphor: a novel application for improvingthe luminous flu...SrBaSiO 4 :Eu 2+  phosphor: a novel application for improvingthe luminous flu...
SrBaSiO 4 :Eu 2+ phosphor: a novel application for improvingthe luminous flu...
 
LaSiO 3 Cl:Ce 3+ ,Tb 3+ and Mg 2 TiO 4 :Mn 4+ : quantum dot phosphors for im...
LaSiO 3 Cl:Ce 3+ ,Tb 3+  and Mg 2 TiO 4 :Mn 4+ : quantum dot phosphors for im...LaSiO 3 Cl:Ce 3+ ,Tb 3+  and Mg 2 TiO 4 :Mn 4+ : quantum dot phosphors for im...
LaSiO 3 Cl:Ce 3+ ,Tb 3+ and Mg 2 TiO 4 :Mn 4+ : quantum dot phosphors for im...
 
Using SiO 2 nano-particles for better color uniformity and lumen output in 8...
Using SiO 2  nano-particles for better color uniformity and lumen output in 8...Using SiO 2  nano-particles for better color uniformity and lumen output in 8...
Using SiO 2 nano-particles for better color uniformity and lumen output in 8...
 
The application of green YF3:Er3+,Yb3+ and red MgSr3Si2O8:Eu2+,Mn2+ layers to...
The application of green YF3:Er3+,Yb3+ and red MgSr3Si2O8:Eu2+,Mn2+ layers to...The application of green YF3:Er3+,Yb3+ and red MgSr3Si2O8:Eu2+,Mn2+ layers to...
The application of green YF3:Er3+,Yb3+ and red MgSr3Si2O8:Eu2+,Mn2+ layers to...
 
Ba[Mg2Al2N4]Eu2+ phosphor for enhancing the optical quality of the 6600K CPW-...
Ba[Mg2Al2N4]Eu2+ phosphor for enhancing the optical quality of the 6600K CPW-...Ba[Mg2Al2N4]Eu2+ phosphor for enhancing the optical quality of the 6600K CPW-...
Ba[Mg2Al2N4]Eu2+ phosphor for enhancing the optical quality of the 6600K CPW-...
 
Utilizing CaCO 3 , CaF 2 , SiO 2 , and TiO 2 particles to enhance color hom...
Utilizing CaCO 3 , CaF 2 , SiO 2 , and TiO 2  particles  to enhance color hom...Utilizing CaCO 3 , CaF 2 , SiO 2 , and TiO 2  particles  to enhance color hom...
Utilizing CaCO 3 , CaF 2 , SiO 2 , and TiO 2 particles to enhance color hom...
 
The effects of ZnO particles on the color homogeneity of phosphor-converted h...
The effects of ZnO particles on the color homogeneity of phosphor-converted h...The effects of ZnO particles on the color homogeneity of phosphor-converted h...
The effects of ZnO particles on the color homogeneity of phosphor-converted h...
 
Using Green Emitting Phosphor for Improving Lighting Performance of In-cup Pa...
Using Green Emitting Phosphor for Improving Lighting Performance of In-cup Pa...Using Green Emitting Phosphor for Improving Lighting Performance of In-cup Pa...
Using Green Emitting Phosphor for Improving Lighting Performance of In-cup Pa...
 

Similar to The options in remote phosphor structure for better white LEDs color quality

Improving the optical efficiency of white light-emitting diodes based on phos...
Improving the optical efficiency of white light-emitting diodes based on phos...Improving the optical efficiency of white light-emitting diodes based on phos...
Improving the optical efficiency of white light-emitting diodes based on phos...journalBEEI
 
Application of dual-layer phosphor geometries for enhancing the optical prope...
Application of dual-layer phosphor geometries for enhancing the optical prope...Application of dual-layer phosphor geometries for enhancing the optical prope...
Application of dual-layer phosphor geometries for enhancing the optical prope...TELKOMNIKA JOURNAL
 
Research on advancing chromatic reproduction and luminosity of a WLED using t...
Research on advancing chromatic reproduction and luminosity of a WLED using t...Research on advancing chromatic reproduction and luminosity of a WLED using t...
Research on advancing chromatic reproduction and luminosity of a WLED using t...TELKOMNIKA JOURNAL
 
The better distant phosphor configurations for enhancing WLED color intensity...
The better distant phosphor configurations for enhancing WLED color intensity...The better distant phosphor configurations for enhancing WLED color intensity...
The better distant phosphor configurations for enhancing WLED color intensity...TELKOMNIKA JOURNAL
 
For improvements in chromatic scales and luminescent fluxes of white lights: ...
For improvements in chromatic scales and luminescent fluxes of white lights: ...For improvements in chromatic scales and luminescent fluxes of white lights: ...
For improvements in chromatic scales and luminescent fluxes of white lights: ...TELKOMNIKA JOURNAL
 
Chroma consistency and luminous efficacy for a WLED using remote phosphor con...
Chroma consistency and luminous efficacy for a WLED using remote phosphor con...Chroma consistency and luminous efficacy for a WLED using remote phosphor con...
Chroma consistency and luminous efficacy for a WLED using remote phosphor con...TELKOMNIKA JOURNAL
 
LaSiO 3 Cl:Ce 3+ ,Tb 3+ and Mg 2 TiO 4 :Mn 4+ : quantum dot phosphors for im...
LaSiO 3 Cl:Ce 3+ ,Tb 3+  and Mg 2 TiO 4 :Mn 4+ : quantum dot phosphors for im...LaSiO 3 Cl:Ce 3+ ,Tb 3+  and Mg 2 TiO 4 :Mn 4+ : quantum dot phosphors for im...
LaSiO 3 Cl:Ce 3+ ,Tb 3+ and Mg 2 TiO 4 :Mn 4+ : quantum dot phosphors for im...IJECEIAES
 
Improving luminous flux and color homogeneity of dual-layer phosphor sctructure
Improving luminous flux and color homogeneity of dual-layer phosphor sctructureImproving luminous flux and color homogeneity of dual-layer phosphor sctructure
Improving luminous flux and color homogeneity of dual-layer phosphor sctructureTELKOMNIKA JOURNAL
 
Enhancing the CRI and lumen output for the 6600 K WLED with convex-dual-layer...
Enhancing the CRI and lumen output for the 6600 K WLED with convex-dual-layer...Enhancing the CRI and lumen output for the 6600 K WLED with convex-dual-layer...
Enhancing the CRI and lumen output for the 6600 K WLED with convex-dual-layer...IJECEIAES
 
Using triple-layer remote phosphor structures LaVO4:Eu3+ and ZnS:Cu,Sn to imp...
Using triple-layer remote phosphor structures LaVO4:Eu3+ and ZnS:Cu,Sn to imp...Using triple-layer remote phosphor structures LaVO4:Eu3+ and ZnS:Cu,Sn to imp...
Using triple-layer remote phosphor structures LaVO4:Eu3+ and ZnS:Cu,Sn to imp...TELKOMNIKA JOURNAL
 
The improvement of the color rendering index using convex-dual-layer remote p...
The improvement of the color rendering index using convex-dual-layer remote p...The improvement of the color rendering index using convex-dual-layer remote p...
The improvement of the color rendering index using convex-dual-layer remote p...TELKOMNIKA JOURNAL
 

Similar to The options in remote phosphor structure for better white LEDs color quality (12)

Improving the optical efficiency of white light-emitting diodes based on phos...
Improving the optical efficiency of white light-emitting diodes based on phos...Improving the optical efficiency of white light-emitting diodes based on phos...
Improving the optical efficiency of white light-emitting diodes based on phos...
 
Application of dual-layer phosphor geometries for enhancing the optical prope...
Application of dual-layer phosphor geometries for enhancing the optical prope...Application of dual-layer phosphor geometries for enhancing the optical prope...
Application of dual-layer phosphor geometries for enhancing the optical prope...
 
Research on advancing chromatic reproduction and luminosity of a WLED using t...
Research on advancing chromatic reproduction and luminosity of a WLED using t...Research on advancing chromatic reproduction and luminosity of a WLED using t...
Research on advancing chromatic reproduction and luminosity of a WLED using t...
 
The better distant phosphor configurations for enhancing WLED color intensity...
The better distant phosphor configurations for enhancing WLED color intensity...The better distant phosphor configurations for enhancing WLED color intensity...
The better distant phosphor configurations for enhancing WLED color intensity...
 
For improvements in chromatic scales and luminescent fluxes of white lights: ...
For improvements in chromatic scales and luminescent fluxes of white lights: ...For improvements in chromatic scales and luminescent fluxes of white lights: ...
For improvements in chromatic scales and luminescent fluxes of white lights: ...
 
Chroma consistency and luminous efficacy for a WLED using remote phosphor con...
Chroma consistency and luminous efficacy for a WLED using remote phosphor con...Chroma consistency and luminous efficacy for a WLED using remote phosphor con...
Chroma consistency and luminous efficacy for a WLED using remote phosphor con...
 
LaSiO 3 Cl:Ce 3+ ,Tb 3+ and Mg 2 TiO 4 :Mn 4+ : quantum dot phosphors for im...
LaSiO 3 Cl:Ce 3+ ,Tb 3+  and Mg 2 TiO 4 :Mn 4+ : quantum dot phosphors for im...LaSiO 3 Cl:Ce 3+ ,Tb 3+  and Mg 2 TiO 4 :Mn 4+ : quantum dot phosphors for im...
LaSiO 3 Cl:Ce 3+ ,Tb 3+ and Mg 2 TiO 4 :Mn 4+ : quantum dot phosphors for im...
 
Improving luminous flux and color homogeneity of dual-layer phosphor sctructure
Improving luminous flux and color homogeneity of dual-layer phosphor sctructureImproving luminous flux and color homogeneity of dual-layer phosphor sctructure
Improving luminous flux and color homogeneity of dual-layer phosphor sctructure
 
YAl3B4O12:Ce3+,Mn2
YAl3B4O12:Ce3+,Mn2YAl3B4O12:Ce3+,Mn2
YAl3B4O12:Ce3+,Mn2
 
Enhancing the CRI and lumen output for the 6600 K WLED with convex-dual-layer...
Enhancing the CRI and lumen output for the 6600 K WLED with convex-dual-layer...Enhancing the CRI and lumen output for the 6600 K WLED with convex-dual-layer...
Enhancing the CRI and lumen output for the 6600 K WLED with convex-dual-layer...
 
Using triple-layer remote phosphor structures LaVO4:Eu3+ and ZnS:Cu,Sn to imp...
Using triple-layer remote phosphor structures LaVO4:Eu3+ and ZnS:Cu,Sn to imp...Using triple-layer remote phosphor structures LaVO4:Eu3+ and ZnS:Cu,Sn to imp...
Using triple-layer remote phosphor structures LaVO4:Eu3+ and ZnS:Cu,Sn to imp...
 
The improvement of the color rendering index using convex-dual-layer remote p...
The improvement of the color rendering index using convex-dual-layer remote p...The improvement of the color rendering index using convex-dual-layer remote p...
The improvement of the color rendering index using convex-dual-layer remote p...
 

More from TELKOMNIKA JOURNAL

Amazon products reviews classification based on machine learning, deep learni...
Amazon products reviews classification based on machine learning, deep learni...Amazon products reviews classification based on machine learning, deep learni...
Amazon products reviews classification based on machine learning, deep learni...TELKOMNIKA JOURNAL
 
Design, simulation, and analysis of microstrip patch antenna for wireless app...
Design, simulation, and analysis of microstrip patch antenna for wireless app...Design, simulation, and analysis of microstrip patch antenna for wireless app...
Design, simulation, and analysis of microstrip patch antenna for wireless app...TELKOMNIKA JOURNAL
 
Design and simulation an optimal enhanced PI controller for congestion avoida...
Design and simulation an optimal enhanced PI controller for congestion avoida...Design and simulation an optimal enhanced PI controller for congestion avoida...
Design and simulation an optimal enhanced PI controller for congestion avoida...TELKOMNIKA JOURNAL
 
Improving the detection of intrusion in vehicular ad-hoc networks with modifi...
Improving the detection of intrusion in vehicular ad-hoc networks with modifi...Improving the detection of intrusion in vehicular ad-hoc networks with modifi...
Improving the detection of intrusion in vehicular ad-hoc networks with modifi...TELKOMNIKA JOURNAL
 
Conceptual model of internet banking adoption with perceived risk and trust f...
Conceptual model of internet banking adoption with perceived risk and trust f...Conceptual model of internet banking adoption with perceived risk and trust f...
Conceptual model of internet banking adoption with perceived risk and trust f...TELKOMNIKA JOURNAL
 
Efficient combined fuzzy logic and LMS algorithm for smart antenna
Efficient combined fuzzy logic and LMS algorithm for smart antennaEfficient combined fuzzy logic and LMS algorithm for smart antenna
Efficient combined fuzzy logic and LMS algorithm for smart antennaTELKOMNIKA JOURNAL
 
Design and implementation of a LoRa-based system for warning of forest fire
Design and implementation of a LoRa-based system for warning of forest fireDesign and implementation of a LoRa-based system for warning of forest fire
Design and implementation of a LoRa-based system for warning of forest fireTELKOMNIKA JOURNAL
 
Wavelet-based sensing technique in cognitive radio network
Wavelet-based sensing technique in cognitive radio networkWavelet-based sensing technique in cognitive radio network
Wavelet-based sensing technique in cognitive radio networkTELKOMNIKA JOURNAL
 
A novel compact dual-band bandstop filter with enhanced rejection bands
A novel compact dual-band bandstop filter with enhanced rejection bandsA novel compact dual-band bandstop filter with enhanced rejection bands
A novel compact dual-band bandstop filter with enhanced rejection bandsTELKOMNIKA JOURNAL
 
Deep learning approach to DDoS attack with imbalanced data at the application...
Deep learning approach to DDoS attack with imbalanced data at the application...Deep learning approach to DDoS attack with imbalanced data at the application...
Deep learning approach to DDoS attack with imbalanced data at the application...TELKOMNIKA JOURNAL
 
Brief note on match and miss-match uncertainties
Brief note on match and miss-match uncertaintiesBrief note on match and miss-match uncertainties
Brief note on match and miss-match uncertaintiesTELKOMNIKA JOURNAL
 
Implementation of FinFET technology based low power 4×4 Wallace tree multipli...
Implementation of FinFET technology based low power 4×4 Wallace tree multipli...Implementation of FinFET technology based low power 4×4 Wallace tree multipli...
Implementation of FinFET technology based low power 4×4 Wallace tree multipli...TELKOMNIKA JOURNAL
 
Evaluation of the weighted-overlap add model with massive MIMO in a 5G system
Evaluation of the weighted-overlap add model with massive MIMO in a 5G systemEvaluation of the weighted-overlap add model with massive MIMO in a 5G system
Evaluation of the weighted-overlap add model with massive MIMO in a 5G systemTELKOMNIKA JOURNAL
 
Reflector antenna design in different frequencies using frequency selective s...
Reflector antenna design in different frequencies using frequency selective s...Reflector antenna design in different frequencies using frequency selective s...
Reflector antenna design in different frequencies using frequency selective s...TELKOMNIKA JOURNAL
 
Reagentless iron detection in water based on unclad fiber optical sensor
Reagentless iron detection in water based on unclad fiber optical sensorReagentless iron detection in water based on unclad fiber optical sensor
Reagentless iron detection in water based on unclad fiber optical sensorTELKOMNIKA JOURNAL
 
Impact of CuS counter electrode calcination temperature on quantum dot sensit...
Impact of CuS counter electrode calcination temperature on quantum dot sensit...Impact of CuS counter electrode calcination temperature on quantum dot sensit...
Impact of CuS counter electrode calcination temperature on quantum dot sensit...TELKOMNIKA JOURNAL
 
A progressive learning for structural tolerance online sequential extreme lea...
A progressive learning for structural tolerance online sequential extreme lea...A progressive learning for structural tolerance online sequential extreme lea...
A progressive learning for structural tolerance online sequential extreme lea...TELKOMNIKA JOURNAL
 
Electroencephalography-based brain-computer interface using neural networks
Electroencephalography-based brain-computer interface using neural networksElectroencephalography-based brain-computer interface using neural networks
Electroencephalography-based brain-computer interface using neural networksTELKOMNIKA JOURNAL
 
Adaptive segmentation algorithm based on level set model in medical imaging
Adaptive segmentation algorithm based on level set model in medical imagingAdaptive segmentation algorithm based on level set model in medical imaging
Adaptive segmentation algorithm based on level set model in medical imagingTELKOMNIKA JOURNAL
 
Automatic channel selection using shuffled frog leaping algorithm for EEG bas...
Automatic channel selection using shuffled frog leaping algorithm for EEG bas...Automatic channel selection using shuffled frog leaping algorithm for EEG bas...
Automatic channel selection using shuffled frog leaping algorithm for EEG bas...TELKOMNIKA JOURNAL
 

More from TELKOMNIKA JOURNAL (20)

Amazon products reviews classification based on machine learning, deep learni...
Amazon products reviews classification based on machine learning, deep learni...Amazon products reviews classification based on machine learning, deep learni...
Amazon products reviews classification based on machine learning, deep learni...
 
Design, simulation, and analysis of microstrip patch antenna for wireless app...
Design, simulation, and analysis of microstrip patch antenna for wireless app...Design, simulation, and analysis of microstrip patch antenna for wireless app...
Design, simulation, and analysis of microstrip patch antenna for wireless app...
 
Design and simulation an optimal enhanced PI controller for congestion avoida...
Design and simulation an optimal enhanced PI controller for congestion avoida...Design and simulation an optimal enhanced PI controller for congestion avoida...
Design and simulation an optimal enhanced PI controller for congestion avoida...
 
Improving the detection of intrusion in vehicular ad-hoc networks with modifi...
Improving the detection of intrusion in vehicular ad-hoc networks with modifi...Improving the detection of intrusion in vehicular ad-hoc networks with modifi...
Improving the detection of intrusion in vehicular ad-hoc networks with modifi...
 
Conceptual model of internet banking adoption with perceived risk and trust f...
Conceptual model of internet banking adoption with perceived risk and trust f...Conceptual model of internet banking adoption with perceived risk and trust f...
Conceptual model of internet banking adoption with perceived risk and trust f...
 
Efficient combined fuzzy logic and LMS algorithm for smart antenna
Efficient combined fuzzy logic and LMS algorithm for smart antennaEfficient combined fuzzy logic and LMS algorithm for smart antenna
Efficient combined fuzzy logic and LMS algorithm for smart antenna
 
Design and implementation of a LoRa-based system for warning of forest fire
Design and implementation of a LoRa-based system for warning of forest fireDesign and implementation of a LoRa-based system for warning of forest fire
Design and implementation of a LoRa-based system for warning of forest fire
 
Wavelet-based sensing technique in cognitive radio network
Wavelet-based sensing technique in cognitive radio networkWavelet-based sensing technique in cognitive radio network
Wavelet-based sensing technique in cognitive radio network
 
A novel compact dual-band bandstop filter with enhanced rejection bands
A novel compact dual-band bandstop filter with enhanced rejection bandsA novel compact dual-band bandstop filter with enhanced rejection bands
A novel compact dual-band bandstop filter with enhanced rejection bands
 
Deep learning approach to DDoS attack with imbalanced data at the application...
Deep learning approach to DDoS attack with imbalanced data at the application...Deep learning approach to DDoS attack with imbalanced data at the application...
Deep learning approach to DDoS attack with imbalanced data at the application...
 
Brief note on match and miss-match uncertainties
Brief note on match and miss-match uncertaintiesBrief note on match and miss-match uncertainties
Brief note on match and miss-match uncertainties
 
Implementation of FinFET technology based low power 4×4 Wallace tree multipli...
Implementation of FinFET technology based low power 4×4 Wallace tree multipli...Implementation of FinFET technology based low power 4×4 Wallace tree multipli...
Implementation of FinFET technology based low power 4×4 Wallace tree multipli...
 
Evaluation of the weighted-overlap add model with massive MIMO in a 5G system
Evaluation of the weighted-overlap add model with massive MIMO in a 5G systemEvaluation of the weighted-overlap add model with massive MIMO in a 5G system
Evaluation of the weighted-overlap add model with massive MIMO in a 5G system
 
Reflector antenna design in different frequencies using frequency selective s...
Reflector antenna design in different frequencies using frequency selective s...Reflector antenna design in different frequencies using frequency selective s...
Reflector antenna design in different frequencies using frequency selective s...
 
Reagentless iron detection in water based on unclad fiber optical sensor
Reagentless iron detection in water based on unclad fiber optical sensorReagentless iron detection in water based on unclad fiber optical sensor
Reagentless iron detection in water based on unclad fiber optical sensor
 
Impact of CuS counter electrode calcination temperature on quantum dot sensit...
Impact of CuS counter electrode calcination temperature on quantum dot sensit...Impact of CuS counter electrode calcination temperature on quantum dot sensit...
Impact of CuS counter electrode calcination temperature on quantum dot sensit...
 
A progressive learning for structural tolerance online sequential extreme lea...
A progressive learning for structural tolerance online sequential extreme lea...A progressive learning for structural tolerance online sequential extreme lea...
A progressive learning for structural tolerance online sequential extreme lea...
 
Electroencephalography-based brain-computer interface using neural networks
Electroencephalography-based brain-computer interface using neural networksElectroencephalography-based brain-computer interface using neural networks
Electroencephalography-based brain-computer interface using neural networks
 
Adaptive segmentation algorithm based on level set model in medical imaging
Adaptive segmentation algorithm based on level set model in medical imagingAdaptive segmentation algorithm based on level set model in medical imaging
Adaptive segmentation algorithm based on level set model in medical imaging
 
Automatic channel selection using shuffled frog leaping algorithm for EEG bas...
Automatic channel selection using shuffled frog leaping algorithm for EEG bas...Automatic channel selection using shuffled frog leaping algorithm for EEG bas...
Automatic channel selection using shuffled frog leaping algorithm for EEG bas...
 

Recently uploaded

247267395-1-Symmetric-and-distributed-shared-memory-architectures-ppt (1).ppt
247267395-1-Symmetric-and-distributed-shared-memory-architectures-ppt (1).ppt247267395-1-Symmetric-and-distributed-shared-memory-architectures-ppt (1).ppt
247267395-1-Symmetric-and-distributed-shared-memory-architectures-ppt (1).pptssuser5c9d4b1
 
Call Girls in Nagpur Suman Call 7001035870 Meet With Nagpur Escorts
Call Girls in Nagpur Suman Call 7001035870 Meet With Nagpur EscortsCall Girls in Nagpur Suman Call 7001035870 Meet With Nagpur Escorts
Call Girls in Nagpur Suman Call 7001035870 Meet With Nagpur EscortsCall Girls in Nagpur High Profile
 
Microscopic Analysis of Ceramic Materials.pptx
Microscopic Analysis of Ceramic Materials.pptxMicroscopic Analysis of Ceramic Materials.pptx
Microscopic Analysis of Ceramic Materials.pptxpurnimasatapathy1234
 
MANUFACTURING PROCESS-II UNIT-2 LATHE MACHINE
MANUFACTURING PROCESS-II UNIT-2 LATHE MACHINEMANUFACTURING PROCESS-II UNIT-2 LATHE MACHINE
MANUFACTURING PROCESS-II UNIT-2 LATHE MACHINESIVASHANKAR N
 
Call Girls Service Nashik Vaishnavi 7001305949 Independent Escort Service Nashik
Call Girls Service Nashik Vaishnavi 7001305949 Independent Escort Service NashikCall Girls Service Nashik Vaishnavi 7001305949 Independent Escort Service Nashik
Call Girls Service Nashik Vaishnavi 7001305949 Independent Escort Service NashikCall Girls in Nagpur High Profile
 
Top Rated Pune Call Girls Budhwar Peth ⟟ 6297143586 ⟟ Call Me For Genuine Se...
Top Rated  Pune Call Girls Budhwar Peth ⟟ 6297143586 ⟟ Call Me For Genuine Se...Top Rated  Pune Call Girls Budhwar Peth ⟟ 6297143586 ⟟ Call Me For Genuine Se...
Top Rated Pune Call Girls Budhwar Peth ⟟ 6297143586 ⟟ Call Me For Genuine Se...Call Girls in Nagpur High Profile
 
SPICE PARK APR2024 ( 6,793 SPICE Models )
SPICE PARK APR2024 ( 6,793 SPICE Models )SPICE PARK APR2024 ( 6,793 SPICE Models )
SPICE PARK APR2024 ( 6,793 SPICE Models )Tsuyoshi Horigome
 
(SHREYA) Chakan Call Girls Just Call 7001035870 [ Cash on Delivery ] Pune Esc...
(SHREYA) Chakan Call Girls Just Call 7001035870 [ Cash on Delivery ] Pune Esc...(SHREYA) Chakan Call Girls Just Call 7001035870 [ Cash on Delivery ] Pune Esc...
(SHREYA) Chakan Call Girls Just Call 7001035870 [ Cash on Delivery ] Pune Esc...ranjana rawat
 
(RIA) Call Girls Bhosari ( 7001035870 ) HI-Fi Pune Escorts Service
(RIA) Call Girls Bhosari ( 7001035870 ) HI-Fi Pune Escorts Service(RIA) Call Girls Bhosari ( 7001035870 ) HI-Fi Pune Escorts Service
(RIA) Call Girls Bhosari ( 7001035870 ) HI-Fi Pune Escorts Serviceranjana rawat
 
UNIT - IV - Air Compressors and its Performance
UNIT - IV - Air Compressors and its PerformanceUNIT - IV - Air Compressors and its Performance
UNIT - IV - Air Compressors and its Performancesivaprakash250
 
Introduction and different types of Ethernet.pptx
Introduction and different types of Ethernet.pptxIntroduction and different types of Ethernet.pptx
Introduction and different types of Ethernet.pptxupamatechverse
 
HARDNESS, FRACTURE TOUGHNESS AND STRENGTH OF CERAMICS
HARDNESS, FRACTURE TOUGHNESS AND STRENGTH OF CERAMICSHARDNESS, FRACTURE TOUGHNESS AND STRENGTH OF CERAMICS
HARDNESS, FRACTURE TOUGHNESS AND STRENGTH OF CERAMICSRajkumarAkumalla
 
UNIT-III FMM. DIMENSIONAL ANALYSIS
UNIT-III FMM.        DIMENSIONAL ANALYSISUNIT-III FMM.        DIMENSIONAL ANALYSIS
UNIT-III FMM. DIMENSIONAL ANALYSISrknatarajan
 
Call Girls Service Nagpur Tanvi Call 7001035870 Meet With Nagpur Escorts
Call Girls Service Nagpur Tanvi Call 7001035870 Meet With Nagpur EscortsCall Girls Service Nagpur Tanvi Call 7001035870 Meet With Nagpur Escorts
Call Girls Service Nagpur Tanvi Call 7001035870 Meet With Nagpur EscortsCall Girls in Nagpur High Profile
 
result management system report for college project
result management system report for college projectresult management system report for college project
result management system report for college projectTonystark477637
 
Introduction to IEEE STANDARDS and its different types.pptx
Introduction to IEEE STANDARDS and its different types.pptxIntroduction to IEEE STANDARDS and its different types.pptx
Introduction to IEEE STANDARDS and its different types.pptxupamatechverse
 
College Call Girls Nashik Nehal 7001305949 Independent Escort Service Nashik
College Call Girls Nashik Nehal 7001305949 Independent Escort Service NashikCollege Call Girls Nashik Nehal 7001305949 Independent Escort Service Nashik
College Call Girls Nashik Nehal 7001305949 Independent Escort Service NashikCall Girls in Nagpur High Profile
 
Introduction to Multiple Access Protocol.pptx
Introduction to Multiple Access Protocol.pptxIntroduction to Multiple Access Protocol.pptx
Introduction to Multiple Access Protocol.pptxupamatechverse
 
Call for Papers - Educational Administration: Theory and Practice, E-ISSN: 21...
Call for Papers - Educational Administration: Theory and Practice, E-ISSN: 21...Call for Papers - Educational Administration: Theory and Practice, E-ISSN: 21...
Call for Papers - Educational Administration: Theory and Practice, E-ISSN: 21...Christo Ananth
 

Recently uploaded (20)

247267395-1-Symmetric-and-distributed-shared-memory-architectures-ppt (1).ppt
247267395-1-Symmetric-and-distributed-shared-memory-architectures-ppt (1).ppt247267395-1-Symmetric-and-distributed-shared-memory-architectures-ppt (1).ppt
247267395-1-Symmetric-and-distributed-shared-memory-architectures-ppt (1).ppt
 
Call Girls in Nagpur Suman Call 7001035870 Meet With Nagpur Escorts
Call Girls in Nagpur Suman Call 7001035870 Meet With Nagpur EscortsCall Girls in Nagpur Suman Call 7001035870 Meet With Nagpur Escorts
Call Girls in Nagpur Suman Call 7001035870 Meet With Nagpur Escorts
 
Microscopic Analysis of Ceramic Materials.pptx
Microscopic Analysis of Ceramic Materials.pptxMicroscopic Analysis of Ceramic Materials.pptx
Microscopic Analysis of Ceramic Materials.pptx
 
MANUFACTURING PROCESS-II UNIT-2 LATHE MACHINE
MANUFACTURING PROCESS-II UNIT-2 LATHE MACHINEMANUFACTURING PROCESS-II UNIT-2 LATHE MACHINE
MANUFACTURING PROCESS-II UNIT-2 LATHE MACHINE
 
Call Girls Service Nashik Vaishnavi 7001305949 Independent Escort Service Nashik
Call Girls Service Nashik Vaishnavi 7001305949 Independent Escort Service NashikCall Girls Service Nashik Vaishnavi 7001305949 Independent Escort Service Nashik
Call Girls Service Nashik Vaishnavi 7001305949 Independent Escort Service Nashik
 
Top Rated Pune Call Girls Budhwar Peth ⟟ 6297143586 ⟟ Call Me For Genuine Se...
Top Rated  Pune Call Girls Budhwar Peth ⟟ 6297143586 ⟟ Call Me For Genuine Se...Top Rated  Pune Call Girls Budhwar Peth ⟟ 6297143586 ⟟ Call Me For Genuine Se...
Top Rated Pune Call Girls Budhwar Peth ⟟ 6297143586 ⟟ Call Me For Genuine Se...
 
SPICE PARK APR2024 ( 6,793 SPICE Models )
SPICE PARK APR2024 ( 6,793 SPICE Models )SPICE PARK APR2024 ( 6,793 SPICE Models )
SPICE PARK APR2024 ( 6,793 SPICE Models )
 
Roadmap to Membership of RICS - Pathways and Routes
Roadmap to Membership of RICS - Pathways and RoutesRoadmap to Membership of RICS - Pathways and Routes
Roadmap to Membership of RICS - Pathways and Routes
 
(SHREYA) Chakan Call Girls Just Call 7001035870 [ Cash on Delivery ] Pune Esc...
(SHREYA) Chakan Call Girls Just Call 7001035870 [ Cash on Delivery ] Pune Esc...(SHREYA) Chakan Call Girls Just Call 7001035870 [ Cash on Delivery ] Pune Esc...
(SHREYA) Chakan Call Girls Just Call 7001035870 [ Cash on Delivery ] Pune Esc...
 
(RIA) Call Girls Bhosari ( 7001035870 ) HI-Fi Pune Escorts Service
(RIA) Call Girls Bhosari ( 7001035870 ) HI-Fi Pune Escorts Service(RIA) Call Girls Bhosari ( 7001035870 ) HI-Fi Pune Escorts Service
(RIA) Call Girls Bhosari ( 7001035870 ) HI-Fi Pune Escorts Service
 
UNIT - IV - Air Compressors and its Performance
UNIT - IV - Air Compressors and its PerformanceUNIT - IV - Air Compressors and its Performance
UNIT - IV - Air Compressors and its Performance
 
Introduction and different types of Ethernet.pptx
Introduction and different types of Ethernet.pptxIntroduction and different types of Ethernet.pptx
Introduction and different types of Ethernet.pptx
 
HARDNESS, FRACTURE TOUGHNESS AND STRENGTH OF CERAMICS
HARDNESS, FRACTURE TOUGHNESS AND STRENGTH OF CERAMICSHARDNESS, FRACTURE TOUGHNESS AND STRENGTH OF CERAMICS
HARDNESS, FRACTURE TOUGHNESS AND STRENGTH OF CERAMICS
 
UNIT-III FMM. DIMENSIONAL ANALYSIS
UNIT-III FMM.        DIMENSIONAL ANALYSISUNIT-III FMM.        DIMENSIONAL ANALYSIS
UNIT-III FMM. DIMENSIONAL ANALYSIS
 
Call Girls Service Nagpur Tanvi Call 7001035870 Meet With Nagpur Escorts
Call Girls Service Nagpur Tanvi Call 7001035870 Meet With Nagpur EscortsCall Girls Service Nagpur Tanvi Call 7001035870 Meet With Nagpur Escorts
Call Girls Service Nagpur Tanvi Call 7001035870 Meet With Nagpur Escorts
 
result management system report for college project
result management system report for college projectresult management system report for college project
result management system report for college project
 
Introduction to IEEE STANDARDS and its different types.pptx
Introduction to IEEE STANDARDS and its different types.pptxIntroduction to IEEE STANDARDS and its different types.pptx
Introduction to IEEE STANDARDS and its different types.pptx
 
College Call Girls Nashik Nehal 7001305949 Independent Escort Service Nashik
College Call Girls Nashik Nehal 7001305949 Independent Escort Service NashikCollege Call Girls Nashik Nehal 7001305949 Independent Escort Service Nashik
College Call Girls Nashik Nehal 7001305949 Independent Escort Service Nashik
 
Introduction to Multiple Access Protocol.pptx
Introduction to Multiple Access Protocol.pptxIntroduction to Multiple Access Protocol.pptx
Introduction to Multiple Access Protocol.pptx
 
Call for Papers - Educational Administration: Theory and Practice, E-ISSN: 21...
Call for Papers - Educational Administration: Theory and Practice, E-ISSN: 21...Call for Papers - Educational Administration: Theory and Practice, E-ISSN: 21...
Call for Papers - Educational Administration: Theory and Practice, E-ISSN: 21...
 

The options in remote phosphor structure for better white LEDs color quality

  • 1. TELKOMNIKA Telecommunication, Computing, Electronics and Control Vol. 18, No. 5, October 2020, pp. 2606~2611 ISSN: 1693-6930, accredited First Grade by Kemenristekdikti, Decree No: 21/E/KPT/2018 DOI: 10.12928/TELKOMNIKA.v18i5.13526  2606 Journal homepage: http://journal.uad.ac.id/index.php/TELKOMNIKA The options in remote phosphor structure for better white LEDs color quality Nguyen Thi Phuong Loan1 , Nguyen Doan Quoc Anh2 1 Faculty of Fundamental 2, Posts and Telecommunications Institute of Technology, Vietnam 2 Power System Optimization Research Group, Faculty of Electrical and Electronics Engineering, Ton Duc Thang University, Vietnam Article Info ABSTRACT Article history: Received Jul 6, 2019 Revised Mar 1, 2020 Accepted Mar 18, 2020 The WLEDs configuration with remote phosphor layers has higher luminescent performance than WLEDs with dispense coating or conformal coating and is applied for many modern devices. However, managing the chromatic performance of lighting structure with remote phosphor materials is a challenging objective that demands more research. This has inspired the usage of multi phosphor configurations with distance in between the layers to improve color quality. The results of this manuscript can support the manufacturers in choosing the optimal configuration for optical performance in LEDs devices with more than one phosphor material. The simulated model used in the experments is 6500 K CCT WLEDs, which results show the triple-layers structure is more favorable in terms of color quality and light output. Besides, a notable reduction occurs in color deviation means that chromatic stability is also enhanced in WLEDs with three phosphor layers. Through experimental results, which were confirmed by the Mie-scattering theory, this research offers valuable approach and details to produce better WLEDs. Keywords: Color rendering index Dual-layer phosphor Luminous efficacy Mie-scattering theory Remote-phosphor Triple-layer phosphor This is an open access article under the CC BY-SA license. Corresponding Author: Nguyen Doan Quoc Anh, Power System Optimization Research Group, Faculty of Electrical and Electronics Engineering, Ton Duc Thang University, Ho Chi Minh City, Vietnam. Email: nguyendoanquocanh@tdtu.edu.vn 1. INTRODUCTION Lighting devices using LEDs and phosphor material to fabricate white light (WLEDs) contains many remarkable traits such as power saving, cost effective, color consistency, and smaller in size, are perceived as a potential light source [1-4]. The WLEDs work base on the additive color principle, for example, the combination between the yellow light of phosphor with blue light comes from a blue chip [5]. If the lighting efficiency of WLEDs improves, there is a good chance that they are usable in solid-state lighting [6]. The WLEDs are often created by diffusing the phosphor particles onto the LEDs to form a layer. This process will mix the transparent encapsulated resin and the phosphor powder then dispersed on the phosphor package. The advantage of this method is the control over the thickness of the phosphor layer and lowered cost, however, the product is not a high-quality WLEDs [7-9]. As a result, the conformal coating method is a replacement in this situation. The purpose of this method is to distribute colors uniformly
  • 2. TELKOMNIKA Telecommun Comput El Control  The options in remote phosphor structure for better white LEDs color quality (Nguyen Thi Phuong Loan) 2607 and improve the angular color uniformity of CCT [10-13]. However, the light output of conformal coating configuration is weakened by backscattering effect, therefore, the luminous efficiency unable to reach the best result. The approach of isolating the components of the remote phosphor WLEDs has already been mentioned in prior researches with different variations [14-16]. For example, the usage of epoxy hemispherical glass coated with phosphor on the inside amplifies the extracted light by enhancing internal reflection of the structure [17]. Not to mention the luminous efficiency also benefits from the air-gap embedded structure because of the downward light reflection characteristic [18-20]. It is obvious that besides luminous efficacy (LE), other chromatic quality indicators such as color stability, rendering ability are also critical targets to WLEDs. Therefore, modifications such as adding more phosphor material to the remote structure are expected to bring desirable alterations and improve these optical properties of WLEDs [21-23]. The arrangement of phosphor layers in remote structure with two phosphor materials is yellow phosphor below red or green phosphor, while in structure with three phosphor layers the red phosphor is at the top below are green phosphor and yellow phosphor [24, 25]. The concentration of phosphor layer is also an impactful element alongside model arrangement. The additional phosphor materials can cause the re-absorption in the phosphor layer and leads to lower luminous efficiency, particularly in low CCTs. In order to address this problem, the loss of light due to backscattering and reflection must be lowered and the emission of blue and yellow lights needs to improve. Choosing one single remote phosphor structures to improve optical properties for WLEDs from all of the available structures above is a difficult task for the manufacturer. Therefore, this research serves the purpose of offering manufacturers with an optimal choice to enhance WLEDs quality to their desire. The results of this research will demonstrate detailed plans to develop specific optical features. 2. SIMULATION DETAIL The WLEDs equipped with 9 LED chips inside are used for reference in this research. Each blue at peak wavelength emits an output of 1.16W. Figure 1 (a) demonstrate the traditional structure (Y) contains a layer of yellow phosphor YAG:Ce3+ put on top of LEDs chip. Figure 1 (b) is the remote phosphor structure (YR) with two layers, one is red phosphor layer LiAl5O8:Fe3+ and the other below is yellow YAG:Ce3+ phosphor layer. The other remote phosphor (YG) with double layers with the green (Ce,Tb)MgAl11O19:Ce:Tb phosphor placed above LED chips appears in Figure 1 (c). The only triple-layer remote structure with a green phosphor (Ce,Tb)MgAl11O19:Ce:Tb in between two other phosphor layer is visualized in Figure 1 (d). (a) (b) (c) (d) Figure 1. Illustration of multi-layer phosphor structures of white LEDs: (a) Single-layer phosphor, Dual-layer remote phosphor with YR (b) and YG (c), and (d) triple-layer phosphor The first idea of this research is using a green phosphor layer (Ce,Tb)MgAl11O19:Ce:Tb to enhance the green radiation of WLEDs and promote the emitted light from the structure. The second idea revolves around employing a red phosphor layer LiAl5O8:Fe3+ to stimulate an increase in CRI and CQS with red particles from the phosphor. The article elaborates in details the extent which the presence of LiAl5O8:Fe3+ affects the WLEDs optical properties according to the phosphor concentration. With remarkable features including high quantum efficiency and high temperature consistency, the phosphor particles that emits yellow-green light such as (Ce,Tb)MgAl11O19:Ce:Tb and LiAl5O8:Fe3+ have acquired much attention. That is the reason why (Ce,Tb)MgAl11O19:Ce:Tb and LiAl5O8:Fe3+ are especially used in heavy duty and high durability fluorescent lamps. (Ce,Tb)MgAl11O19:Ce:Tb at peak wavelength of 546 nm emits a green light. The presence of the ion Eu2+ benefits (Ce,Tb)MgAl11O19:Ce:Tb by enhancing the luminous efficacy. As the same time, LiAl5O8:Fe3+ emits red light at the peak wavelength of 681 nm. The ideal setup that allow these phosphors to excel is the one that can adjust phosphor radiation and light chips radition to discharge at the same wavelengths. This means the phosphor materials and the chip should have as much common emission wavelengths in their spectra as possible. The range of LiAl5O8:Fe3+ absorption spectrum covers from 320 nm to 480 nm is an enhancement in collecting chromatic radiation out of other wavelength ranges such as yellow since the LED chip is not the only component that emits light. The green phosphor
  • 3.  ISSN: 1693-6930 TELKOMNIKA Telecommun Comput El Control, Vol. 18, No. 5, October 2020: 2606 - 2611 2608 (Ce,Tb)MgAl11O19:Ce:Tb with a vast absorption spectroscopy, which ranges from 200 nm to 400 nm, is also an appropriate material. Before conducting the stimulation of (Ce,Tb)MgAl11O19:Ce:Tb and LiAl5O8:Fe3+ , the input numbers must be measured correctly through different experiments including the concentration of phosphor, size of phosphor particles, excitation spectrum, absorption spectrum, phosphor emission spectrum. The amount of phosphor and their particles magnitude out of the five indicators are the required factors to obtain the highest values in color quality and luminescent flux for WLEDs. The indexes related to the spectra are constants. As the results from previous research suggest, the diameters for phosphor particles revolve around an average of 14.5 µm. The density of each phosphor layer in the remote structure is predetermined at 0.08 mm. The average correlated color temperature (ACCT) is an important index that must be stabilized by changing the concentration of YAG:Ce3+ . The concentration of YAG:Ce3+ is adjusted in every phosphor configuration to stabilize the ACCT while performing the experimentes. This form a distinction in the scattering characteristic of the LEDs resulting in a variety of differences in optical properties. The percentages of yellow-emitting phosphor YAG:Ce3+ in each remote phosphor structure are presented in Figure 2 From Figure 2, it appears that yellow-emitting YAG:Ce3+ phosphor percentage among the phosphor structures is different with the Y structure has the most yellow phosphor and YRG structure the least. Regarding the same ACCT but with the remote phosphor structure, if the concentration of YAG:Ce3+ rises up the backscattering effect also increases which damages the luminous flux. On the other hand, when the concentration level of YAG:Ce3+ is high, the imbalance among the three primary colors contribute to the fabrication of white light: red, yellow and green will appear and causes the color quality to decrease. Therefore, preventing light loss and equalize the proportions of chromatic phosphor in the structure can lead to enhancement in resulted light and chromatic output. The YRG structure which has three chromatic phosphor layers that can effectively balance the primary colors, enhance the color rendering ability with red particles, and improve color uniformity as well as lumen output with green particles, seems to be the ideal solution. So is the phosphor structure containing three distinct chromatic layers the optimal configuration in controlling optical properties? To verify this theory, we need to examine other crucial aspects of an lighting configuration such as the emission wavelength range, which is demonstrated in Figure 3. The differences between emission spectra of remote phosphor structures are definitely obvious. The Y structure with the lowest intensity index among others means that the emission spectrum from this structure is at minumum. In contrast, YRG structure, with emission spectrum from 380-780 nm, produces the most intensity. The YG and YR structures intensity depends on the wavelength range, from 400-500 nm spectral intensity in YG is higher than YR, therefore YG emission spectrum is also greater in comparision to YR. On the other hand, YR in the band from 650-750 nm has higher intensity, which means the color rendering of YR in this emission spectrum is more effective than YG. In order to approve all the conclusions above, part 3 will focus on testing and giving results. Figure 2. YAG:Ce3+ concentration corresponding to the remote phosphor confifurations Figure 3. Emission spectra of the phosphor configurations 3. RESULTS AND DISCUSSION Figure 4 demonstrates the measured color rendering index (CRI) of all lighting configurations. It is obvious that YR structure achieves highest CRI. This is an important result when it comes to improving CRI in remote phosphor structures. Although controlling the CRI in high ACCT is exceptionally difficult, the YR structure can undertake this task. The YR structure with red phosphor layer LiAl5O8:Fe3+ that provide the structure with additional red particles achieves better color rending index (CRI). YRG is second place in term of CRI achieved. Meanwhile, CRI produced by YG structure is the lowest. This result suggests that applying YR structure to serial manufacturing of WLEDs with CRI as the main goal is the optimal choice. The CRI is a popular quality indicator but not enough to conclude the performance of lighting device just
  • 4. TELKOMNIKA Telecommun Comput El Control  The options in remote phosphor structure for better white LEDs color quality (Nguyen Thi Phuong Loan) 2609 based on CRI. The CQS, which examines three features including CRI, observer choice, and color coordination, has risen up and were applied for quality assessment in recent research. With the coverage over these three aspects, CQS seemingly turns out as a vital point and is regarded as the most crucial indicator to evaluate color quality. CQS values of the configurations were calculated and presented in Figure 5. If CRI is highest in YR structure then CQS is reaches its peak in YRG structure which is a result of better balance between chromatic lights yellow, red and green. The high CQS value ensure the good chromatic performance of WLEDs. Meanwhile, the Y structure with poor CQS in comparision to other structures is struggling to manage the chromatic attribute of emitted light due to the lack of chromatic sources, however, this structure presents great value to the lumen output. Despite the drawback in color quality, Y structure still excels in manufacturing due to simpler producing process compare to other structure and relatively low cost. Based on the results in Figure 5, the YRG structure is a perfect fit for WLEDs with high color quality demands. However, does the increase in color quality affect the luminous flux? A comparison between the first layer and second layer was used to answer the previous question. The mathematical equation to calculate the blue and yellow light yielded from WLEDs with two phosphor layers is presented in this part. The results provide valuable information for better understanding of WLEDs mechanism and enhancing methods. The amount of emitted blue light and modified yellow light in single phosphor package with 2h phosphor density are shown below: 𝑃𝐵1 = 𝑃𝐵0 × 𝑒−2𝛼 𝐵1ℎ (1) 𝑃𝑌1 = 1 2 𝛽1×𝑃𝐵0 𝛼 𝐵1−𝛼 𝑌1 (𝑒−2𝛼 𝑌1ℎ − 𝑒−2𝛼 𝐵1ℎ ) (2) In dual-phosphor remote WLEDs with an h phosphor layer density, the amount of emitted blue light and modified yellow light are expressed as: 𝑃𝐵2 = 𝑃𝐵0 × 𝑒−2𝛼 𝐵2ℎ (3) 𝑃𝑌2 = 1 2 𝛽2×𝑃𝐵0 𝛼 𝐵2−𝛼 𝑌2 (𝑒−2𝛼 𝑌2ℎ − 𝑒−2𝛼 𝐵2ℎ ) (4) Figure 4. Color rendering indexes of the phosphor configurations Figure 5. Color quality scale of phosphor configurations The h denotes phosphor density (mm). The subscript “1” indicates WLEDs with single phosphor structure and “2” indicates WLEDs with dual-phosphor remote structure. The β stands for the rate of internal conversion from blue transforms to yellow light. The reflection coefficient of the yellow light is illustrated by γ. The radiation intensities of LED chip including the blue light intensity (PB) and yellow light intensity (PY) are represented by PB0. The blue and yellow light energy lost during the spreading process in the phosphor layer are indicated by αB; αY respectively. The WLEDs in double-layer phosphor structures have their luminous efficacy improved significantly in comparison with the single layer structure ones: (𝑃𝐵2+𝑃𝑌2)−(𝑃𝐵1+𝑃𝑌1) 𝑃𝐵1+𝑃𝑌1 > 0 (5) The utilization of the Mie-theory is to inspect the amount of light scatters from phosphor particles. Besides, the Mie theory also contributes to the calculation of scattering cross section Csca for spherical particles. The Lambert-Beer law measures the light power emitted: I = I0 exp(-µextL) (6)
  • 5.  ISSN: 1693-6930 TELKOMNIKA Telecommun Comput El Control, Vol. 18, No. 5, October 2020: 2606 - 2611 2610 I0, is the incident radiation energy, while the density of phosphor material is L (mm) and µext for the extinction coefficient, which can be calculated with the formula: µext = Nr.Cext, with Nr the number density distribution of particles (mm-3 ) and the extinction cross-section of phosphor particles Cext (mm2 ). From the results of (5), the multi-layer phosphor structure is clearly more beneficial to the light output capacity than the structure with only one layer. This finding is verified by the results of measured luminous fluxes in Figure 6. According to the graph, Y structure has the lowest amount of emitted light among structures. YRG structure, on the contrary, achieves the highest value in luminous flux. This clear all the questions revolve around the impact of YRG structure on the luminous flux since it has the best color quality. The YG structure is the second best in terms of lumen output due to the addition of green light component from the green (Ce,Tb)MgAl11O19:Ce:Tb phosphor. The luminous flux within the wavelength from 500-600 nm benefit from the green phosphor (Ce,Tb)MgAl11O19:Ce:Tb. It is obvious that the intensity of YRG structure in these wavelengths is greater than YG and Y. Therefore, YAG:Ce3+ concentration level in YRG structure is dropped to the lowest among all structures to maintain ACCT and the backscattering effects also decrease after the concentration of YAG:Ce3+ in YRG declined. The blue light from the blue chip will then easily passes through YAG:Ce3+ layer and gets to other layers. It can also be referred that the YRG structure increase the amount of light transmitted from the chips. This results in YRG having the highest spectral intensity while in the same emission spectrum as other structures. As a result, it is possible to choose the YRG structure as an enhancement option for lighting devices that need to improve both color quality and light output. Beside other aspects, color uniformity is another deciding factor to the color of light that can be omitted. As of the solutions for better color uniformity, some used phosphor particles that enhance the scattering effect such as TiO2, ZnO,... or applied the conformal coating method. The color quality can be be improved, yet lumen output would decline when the mentioned methods are implemented. Therefore, adding green (Ce,Tb)MgAl11O19:Ce:Tb phosphor and red LiAl5O8:Fe3+ phosphor will enhance the chromatic performance with the support from green and red scattering properties. The back-scaterring effect that lowers light output is also lessen if remote phosphor structure were applied. Beside the mechanism of the structure, the component particular such as phosphor concentration is also important to enable WLEDs to the highest potential. The influence of phosphor concentration can be confirmed by Lambert-Beer law in (6). Figure 7 expresses the chromatic deviation in the structures, which shows that YRG is the structure with the lowest index regarding this indicator. The smaller the color deviation, the better color uniformity. This resulted from the scattering properties of the additional phosphor layers in YRG structure increase the scattering events in WLEDs and through that strengthen color uniformity. The down side of more scattering eventsis the reduction of light output. This small decline in light output can be compensated with the amount of emitted light increased as the back-scattering is managed. In conclusion, the YRG structure has the best performance in chromatic homogeneity and lumenoutput while Y structure is the oppsite due to color deviation and being a single-layer structure. Figure 6. Luminous efficacy of phosphor configurations Figure 7. Corelated color temperature deviation (ΔCCT) of the remote phosphor configurations 4. CONCLUSION The research aim for a practical solution to enhance optical properties by analyzing the lighting performance of Y, YG, YR and YRG structures at ACCT of 6600 K. Green (Ce,Tb)MgAl11O19:Ce:Tb phosphor and red LiAl5O8:Fe3+ phosphor are used for the simulation processes. Aside from the experiemnts and theories, the the Mie theory and the Lambert-Beer law were also applied to verified the results. As observed from the results, green (Ce,Tb)MgAl11O19:Ce:Tb phosphor benefits the chromatic uniformity and lumen output with additional green particles, which is shown by the better values of mentioned in YG structure in comparision to YR structure. The red LiAl5O8:Fe3+ phosphor, on the other hand, improves CRI
  • 6. TELKOMNIKA Telecommun Comput El Control  The options in remote phosphor structure for better white LEDs color quality (Nguyen Thi Phuong Loan) 2611 and CQS using red phosphor particles, which is verified by greater CRI and CQS in YR than YG. The YRG structure with two chromatic phosphor layers added in can effectively manage the balance of yellow, green and red which contributes to better color quality. Moreover, the reduction of backscattering effect in YRG induces a significant development in the luminous flux of this structure. Evidently, the highest luminous flux is also in the YRG structure. Based on the results of this study, producers can now choose a suitable structure to serve the purpose of enhancing the quality of WLEDs. REFERENCES [1] Bindai S., Annapurna K., Tarafder A., “Realization of phosphor-in-glass thin film on soda-lime silicate glass with low sintering temperature for high color rendering white LEDs,” Applied Optics, vol. 58, no. 9, pp. 2372-2381, 2019. [2] Hao J., Ke H. L., Jing L., Sun Q., Sun R. T., “Prediction of lifetime by lumen degradation and color shift for LED lamps, in a non-accelerated reliability test over 20,000  h.,” Applied Optics, vol. 58, no. 7, pp. 1855-1861. 2019; [3] David A., Fini P. T., Houser K. W., et al., “Development of the IES method for evaluating the color rendition of light sources,” Optics Express, vol. 23, no. 12, pp. 15888-15906, 2015. [4] Lee H. K., Cho H. K., Byun C. W., et al., “Color-tunable organic light-emitting diodes with vertically stacked blue, green, and red colors for lighting and display applications,” Optics Express, vol. 26, no. 14, pp. 18351-18361, 2018. [5] Lin D., Ho Chen W. H., Liu J., et al., “Silicon Solar Cells Efficiency Enhanced in NIR Band by Coating Plasmonics ITO-and UC Phosphors-Particles Layers on Back-Side Surface Using Spin-On Film Deposition,” in Conference on Lasers and Electro-Optics, OSA Technical Digest. Optical Society of America, paper ATh1I.4., 2019. [6] Y. Yu, C. Cao, Z. Wu, et al., “Improving the color-rendering index of a tandem warm white organic light-emitting device by employing a simple fabrication process,” Optics Letters, vol. 44, no. 4, pp. 931-934, 2019. [7] W. Zhang, W. Yang, P. Zhong, et al., “Spectral optimization of color temperature tunable white LEDs based on perovskite quantum dots for ultrahigh color rendition,” Optical Materials Express, vol. 7, no. 9, pp. 3065-3076, 2017. [8] Yuce H., Guner T., Balci S., Demir M. M., “Phosphor-based white LED by various glassy particles: control over luminous efficiency,” Optics Letters, vol. 44, no. 3, pp. 479-482, 2019. [9] Wang W., Zhu P., “Red photoluminescent Eu3+-doped Y2O3 nanospheres for LED-phosphor applications: Synthesis and characterization,” Optics Express, vol. 26, no. 26, pp. 34820-34829, 2018. [10] Wei T., Bo W., Yan C., et al., “Single Pr3+-activated high-color-stability fluoride white-light phosphor for white-light-emitting diodes,” Optical Materials Express, vol. 9, no. 1, pp. 223-233, 2019. [11] Dwivedi A., Kumar D., Bahadur Rai S. B., “Monochromatic NIR UC emission in Tm3+/Yb3+co-doped GdVO4 phosphor: the effect of the Bi3+ ion concentration and pump power of a diode laser,” Optics Letters, vol. 43, no. 23, pp. 5785-5788, 2018. [12] Li J. S., Tang Y., Li Z. T., et al., “High efficiency solid–liquid hybrid-state quantum dot light-emitting diodes,” Photonics Research, vol. 6, no. 12, pp. 1107-1115, 2018. [13] Kim W. J., Kim T. K., Kim S. H., et al., “Improved angular color uniformity and hydrothermal reliability of phosphor-converted white light-emitting diodes by using phosphor sedimentation,” Optics Express, vol. 26, no. 22, pp. 28634-28640, 2018. [14] Fouliard Q. T., Haldar S. D., Ghosh R., Raghavan S., “Modeling luminescence behavior for phosphor thermometry applied to doped thermal barrier coating configurations,” Applied Optics, vol. 58, no. 13, pp. D68-D75, 2019. [15] Bakhmet’ev V. V., Malygin V. V., Lebedev L. A., et al., “Synthesis of finely dispersed NaBaPO4:Eu2+ phosphors and structural investigation of their centers of luminescence,” Journal of Optical Technology, vol. 84, no. 9, pp. 642-646, 2017. [16] Sijbom H. F., Verstraete R., Joos J. J., et al., “K2SiF6:Mn4+ as a red phosphor for displays and warm-white LEDs: a review of properties and perspectives,” Optical Materials Express, vol. 7, no. 9, pp. 3332-3365, 2017; [17] Steudel F., Lisec T., Nolte P. W., et al., "Pixelated phosphors for high-resolution and high-contrast white light sources: erratum,” Optics Express, vol. 27, no. 6, pp. 9097-9098, 2019. [18] Fond B., Abram C., Pougin M., Beyrau F., “Investigation of the tin-doped phosphor (Sr,Mg)3(PO4)2:Sn2+ for fluid temperature measurements,” Optical Materials Express, vol. 9, no. 2, pp. 802-818, 2019. [19] Zhang G., Ding K., He G., Zhong P., “Spectral optimization of color temperature tunable white LEDs with red LEDs instead of phosphor for an excellent IES color fidelity index,” OSA Continuum, vol. 2, no. 4, pp. 1056-1064, 2019. [20] Zhang Z. J., Yang W. C., “Tunable photoluminescence in Ba1-xSrxSi3O4N2: Eu2+/ Ce3+, Li+ solid solution phosphors induced by linear structural evolution,” Optical Materials Express, vol. 9, no. 4, pp. 1922-1932, 2019. [21] Moon J. W., Min B. G., Kim J. S., et al., “Optical characteristics and longevity of the line-emitting K2SiF6:Mn4+ phosphor for LED application,” Optical Materials Express, vol. 6, no. 3, pp. 782-792, 2016. [22] Li B., Annadurai G., Sun L. L., et al., “High-efficiency cubic-phased blue-emitting Ba3Lu2B6O15:Ce3+ phosphors for ultraviolet-excited white-light-emitting diodes,” Optics Letters, vol. 43, no. 20, pp. 5138-5141, 2018. [23] Jang J. W., Kim J. S., Kwon H. O., et al., “UV-curable silicate phosphor planar films printed on glass substrate for white light-emitting diodes,” Optics Letters, vol. 40, no. 16, pp. 3723-3726, 2015. [24] Dubey A. K., Gupta M., Kumar V., Mehta D. S., “Laser-line-driven phosphor-converted extended white light source with uniform illumination,” Applied Optics, vol. 58, no. 9, pp. 2402-2407, 2019. [25] Guan A. X., Mo F. W., Chen P. C., et al., “Photoluminescence Properties and Energy Transfer of 𝐸𝑢3+, 𝐵𝑖3+ Co-Doped 𝐶𝑎9(𝑃𝑂4)7 Phosphors,” Journal of Display Technology, vol. 12, no. 2, pp. 136-142, 2016.