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Semi-conductorsSemi-conductors
Presented by:Presented by:
1.Rida Imtiaz1.Rida Imtiaz (Roll No:2172 )(Roll No:2172 )
2.Ishrat2.Ishrat (Roll No:2160 )(Roll No:2160 )
3.Kanza3.Kanza (Roll No:2165 )(Roll No:2165 )
Presented to:Presented to:
Miss xyzMiss xyz
Batch : FET 13, BS Electronics EngineeringBatch : FET 13, BS Electronics Engineering
International Islamic University Islamabad ,IIUIInternational Islamic University Islamabad ,IIUI
SemiconductorsSemiconductors
Overview:Overview:
Following are the topics which will be covered in this presentation.Following are the topics which will be covered in this presentation.
ļ® Introduction to semiconductorsIntroduction to semiconductors
ļ® Types of semiconductorsTypes of semiconductors
ļƒ˜ N-type semiconductorsN-type semiconductors
ļƒ˜ P-type semiconductorsP-type semiconductors
ļ® DopingDoping
ļƒ˜ N-type dopingN-type doping
ļƒ˜ P-type dopingP-type doping
ļ® BiasingBiasing
ļƒ˜ Forward biasingForward biasing
ļƒ˜ Reverse biasingReverse biasing
ļ® DiodesDiodes
ļ® Role of semiconductors in electronics engineeringRole of semiconductors in electronics engineering
ļ® ApplicationsApplications
ļ® ImportanceImportance
ļ® ConclusionConclusion
Introduction to semiconductorsIntroduction to semiconductors
ļ¶ SemiconductorsSemiconductors are materials that have properties in betweenare materials that have properties in between
normalnormal conductorsconductors (materials that allow electric current to pass, e.g. aluminium)(materials that allow electric current to pass, e.g. aluminium)
andand insulatorsinsulators (which block electric current, e.g. sulphur).(which block electric current, e.g. sulphur).
ļ¶ Semiconductors fall into two broad categories.Semiconductors fall into two broad categories.
1.1. First, there areFirst, there are intrinsicintrinsic semiconductorssemiconductors
ļ¶ These are composed of only one kind of material. Silicon and germanium are twoThese are composed of only one kind of material. Silicon and germanium are two
examplesexamples
ļ¶ They are also called "undoped semiconductors" or "i-type semiconductors".They are also called "undoped semiconductors" or "i-type semiconductors".
2-2-ExtrinsicExtrinsic semiconductors.semiconductors.
ļ¶ Which are made of intrinsic semiconductors that have had other substances added toWhich are made of intrinsic semiconductors that have had other substances added to
them to alter their properties.them to alter their properties.
Types of semiconductorsTypes of semiconductors
There are two types of semiconductorsThere are two types of semiconductors
ļ¶ N-type semiconductorsN-type semiconductors
ļ® A N-type material is one in which electrons are majority charge carriers i.e. they are negatively chargedA N-type material is one in which electrons are majority charge carriers i.e. they are negatively charged
materials (-----)materials (-----)
N-type has many free electrons in conduction band and few holes In valence band
Free Electron
15P
14P
14P 14P
14P
Phosphorous atom
ļ® P-type semiconductors:P-type semiconductors:
ļ® A P-type material is one in which holes are majority carriers i.e. they are positively charged materials (+++A P-type material is one in which holes are majority carriers i.e. they are positively charged materials (+++
+)+)
P-type has few free electrons in conduction band and many holes In valence
band
13P
14P
14P 14P
14P
Aluminum atomHole
Majority and minority carriersMajority and minority carriers
ElectronsElectrons areare
ā€¢ MajorityMajority carriers incarriers in NN-type semiconductor-type semiconductor
ā€¢ MinorityMinority carriers incarriers in PP-type semiconductor-type semiconductor
Holes are
ā€¢ Majority carriers in P-type semiconductor
ā€¢ Minority carriers in N-type semiconductor
DopingDoping
ļ® The conductivity of semiconductors may easily be modified by introducing impuritiesThe conductivity of semiconductors may easily be modified by introducing impurities
into theirinto their crystal latticecrystal lattice..
ļ® The process of adding controlled impurities to a semiconductor is known asThe process of adding controlled impurities to a semiconductor is known as dopingdoping..
ļ® The amount of impurity, or dopant, added to anThe amount of impurity, or dopant, added to an intrinsicintrinsic (pure) semiconductor varies(pure) semiconductor varies
its level of conductivity.its level of conductivity.
ļ® Doped semiconductors are referred to asDoped semiconductors are referred to as extrinsicextrinsic..
ļ® By adding impurity to pure semiconductors, the electrical conductivity may be variedBy adding impurity to pure semiconductors, the electrical conductivity may be varied
by factors of thousands or millions.by factors of thousands or millions.
Types of DopingTypes of Doping
ļ® n-dopingn-doping
ļ® The 5-valent dopant has an outer electron more than the silicon atoms. Four outerThe 5-valent dopant has an outer electron more than the silicon atoms. Four outer
electrons combine with ever one silicon atom, while the fifth electron is free to moveelectrons combine with ever one silicon atom, while the fifth electron is free to move
and serves as charge carrier. This free electron requires much less energy to be liftedand serves as charge carrier. This free electron requires much less energy to be lifted
from the valence band into the conduction band, than the electrons which cause thefrom the valence band into the conduction band, than the electrons which cause the
intrinsic conductivity of silicon. The dopant, which emits an electron, is known as anintrinsic conductivity of silicon. The dopant, which emits an electron, is known as an
electron donor (donare, lat. = to give).electron donor (donare, lat. = to give).
ļ® n-doping with phosphorusn-doping with phosphorus
ļ® P-Type doping :P-Type doping :
ļ® In contrast to the free electron due to doping with phosphorus, the 3-valent dopantIn contrast to the free electron due to doping with phosphorus, the 3-valent dopant
effect is exactly the opposite. The 3-valent dopants can catch an additional outereffect is exactly the opposite. The 3-valent dopants can catch an additional outer
electron, thus leaving a hole in the valence band of silicon atoms. Therefore theelectron, thus leaving a hole in the valence band of silicon atoms. Therefore the
electrons in the valence band become mobile. The holes move in the oppositeelectrons in the valence band become mobile. The holes move in the opposite
direction to the movement of the electrons. The necessary energy to lift an electrondirection to the movement of the electrons. The necessary energy to lift an electron
into the energy level of indium as a dopant, is only 1 % of the energy which is neededinto the energy level of indium as a dopant, is only 1 % of the energy which is needed
to raise a valence electron of silicon into the conduction band.to raise a valence electron of silicon into the conduction band.
ļ® p-doping with boronp-doping with boron
BiasingBiasing
.. Forward bias:Forward bias:
In forward bias condition, higher or positive potential is applied at the anode andIn forward bias condition, higher or positive potential is applied at the anode and
negative or lower potential is applied at the cathode of a diode.negative or lower potential is applied at the cathode of a diode.
The positive potential at anode repels the holes in p-region towards n-region whileThe positive potential at anode repels the holes in p-region towards n-region while
negative potential at the cathode repels electrons in n-region towards p-region.negative potential at the cathode repels electrons in n-region towards p-region.
Thus, the height of the potential barrier reduces.Thus, the height of the potential barrier reduces.
The depletion region disappears when the applied voltage equals to the potential barrierThe depletion region disappears when the applied voltage equals to the potential barrier
and a large current flows through the diode.and a large current flows through the diode.
The voltage required to drive the diode into a state of conduction is called as the ā€˜CutThe voltage required to drive the diode into a state of conduction is called as the ā€˜Cut
in/Offset/Threshold/Firing voltageā€™.in/Offset/Threshold/Firing voltageā€™.
The current is of considerable magnitude as it is dominantly constituted by the majorityThe current is of considerable magnitude as it is dominantly constituted by the majority
charge currents that is the hole current in the p-region and the electron current in thecharge currents that is the hole current in the p-region and the electron current in the
n-region.n-region.
..Ā Ā Ā Ā Ā Ā Ā Ā Ā Ā Ā Ā Reverse Bias:Reverse Bias:
InĀ reverseĀ biasĀ condition,Ā Ā theĀ higherĀ orĀ positiveĀ potentialĀ isĀ appliedĀ atĀ theĀ cathodeĀ andĀ negativeĀ InĀ reverseĀ biasĀ condition,Ā Ā theĀ higherĀ orĀ positiveĀ potentialĀ isĀ appliedĀ atĀ theĀ cathodeĀ andĀ negativeĀ 
orĀ lowerĀ potentialĀ isĀ appliedĀ atĀ theĀ anode.Ā orĀ lowerĀ potentialĀ isĀ appliedĀ atĀ theĀ anode.Ā 
TheĀ negativeĀ potentialĀ atĀ anodeĀ attractsĀ theĀ holesĀ inĀ p-regionĀ thatĀ areĀ awayĀ fromĀ theĀ n-regionĀ TheĀ negativeĀ potentialĀ atĀ anodeĀ attractsĀ theĀ holesĀ inĀ p-regionĀ thatĀ areĀ awayĀ fromĀ theĀ n-regionĀ 
whileĀ positiveĀ potentialĀ atĀ theĀ cathodeĀ attractsĀ electronsĀ inĀ n-regionĀ thatĀ areĀ awayĀ fromĀ theĀ p-whileĀ positiveĀ potentialĀ atĀ theĀ cathodeĀ attractsĀ electronsĀ inĀ n-regionĀ thatĀ areĀ awayĀ fromĀ theĀ p-
region.region.
Ā Ā TheĀ appliedĀ voltageĀ increasesĀ theĀ heightĀ ofĀ theĀ potentialĀ barrier.TheĀ appliedĀ voltageĀ increasesĀ theĀ heightĀ ofĀ theĀ potentialĀ barrier.
Ā Ā TheĀ currentĀ flowsĀ dominantlyĀ dueĀ toĀ theĀ minorityĀ chargeĀ currentsĀ thatĀ isĀ theĀ electronĀ currentĀ inĀ TheĀ currentĀ flowsĀ dominantlyĀ dueĀ toĀ theĀ minorityĀ chargeĀ currentsĀ thatĀ isĀ theĀ electronĀ currentĀ inĀ 
p-regionĀ andĀ theĀ holeĀ currentĀ inĀ n-region.Ā p-regionĀ andĀ theĀ holeĀ currentĀ inĀ n-region.Ā 
ThusĀ aĀ constantĀ currentĀ ofĀ negligibleĀ magnitudeĀ flowsĀ inĀ theĀ reverseĀ directionĀ whichĀ isĀ calledĀ asĀ ThusĀ aĀ constantĀ currentĀ ofĀ negligibleĀ magnitudeĀ flowsĀ inĀ theĀ reverseĀ directionĀ whichĀ isĀ calledĀ asĀ 
theĀ ā€˜ReverseĀ saturationĀ currentā€™.theĀ ā€˜ReverseĀ saturationĀ currentā€™.
DiodesDiodes
What is a Diode?What is a Diode?
AĀ AĀ DiodeDiodeĀ isĀ theĀ simplestĀ two-terminalĀ unilateralĀ semiconductorĀ device.Ā Ā isĀ theĀ simplestĀ two-terminalĀ unilateralĀ semiconductorĀ device.Ā 
Ā Ā ItĀ allowsĀ currentĀ toĀ flowĀ onlyĀ inĀ oneĀ directionĀ andĀ blocksĀ theĀ currentĀ thatĀ flowsĀ inĀ ItĀ allowsĀ currentĀ toĀ flowĀ onlyĀ inĀ oneĀ directionĀ andĀ blocksĀ theĀ currentĀ thatĀ flowsĀ inĀ 
theĀ oppositeĀ direction.theĀ oppositeĀ direction.
Ā Ā TheĀ twoĀ terminalsĀ ofĀ theĀ diodeĀ areĀ calledĀ asĀ anodeĀ andĀ cathode.Ā TheĀ twoĀ terminalsĀ ofĀ theĀ diodeĀ areĀ calledĀ asĀ anodeĀ andĀ cathode.Ā 
TheĀ TheĀ symbol of diodesymbol of diodeĀ isĀ asĀ shownĀ inĀ theĀ figureĀ below.Ā Ā isĀ asĀ shownĀ inĀ theĀ figureĀ below.Ā 
Ā Ā 
Characteristics of DiodeCharacteristics of Diode
DiodeĀ alwaysĀ conductsĀ inĀ oneĀ direction.DiodeĀ alwaysĀ conductsĀ inĀ oneĀ direction.
DiodesĀ alwaysĀ conductĀ currentĀ whenĀ ā€œForwardĀ Biasedā€Ā (Ā ZeroĀ resistance)DiodesĀ alwaysĀ conductĀ currentĀ whenĀ ā€œForwardĀ Biasedā€Ā (Ā ZeroĀ resistance)
DiodesĀ doĀ notĀ conductĀ whenĀ ReverseĀ BiasedDiodesĀ doĀ notĀ conductĀ whenĀ ReverseĀ Biased
Ā Ā Ā Ā Ā Ā Ā Ā Ā Ā (InfiniteĀ resistance)(InfiniteĀ resistance)
I-VĀ characteristicsĀ ofĀ IdealĀ diodeI-VĀ characteristicsĀ ofĀ IdealĀ diode
I-V Characteristics of Practical DiodeI-V Characteristics of Practical Diode
ApplicationsApplications
AmorphousĀ semiconductorsĀ areĀ promisingĀ electronicĀ materialsĀ forĀ wideĀ rangeĀ AmorphousĀ semiconductorsĀ areĀ promisingĀ electronicĀ materialsĀ forĀ wideĀ rangeĀ 
ofĀ applicationsĀ suchĀ as:ofĀ applicationsĀ suchĀ as:
ļ® SolarĀ cellSolarĀ cell
ļ® ThinĀ filmĀ transistorsĀ (TFT)ThinĀ filmĀ transistorsĀ (TFT)
ļ® LightĀ sensorsLightĀ sensors
ļ® OpticalĀ memoryĀ devicesOpticalĀ memoryĀ devices
ļ® ElectroĀ photographicĀ applicationElectroĀ photographicĀ application
ļ® X-rayĀ imageĀ sensorsX-rayĀ imageĀ sensors
ļ® Eu-dopedĀ opticalĀ fiberEu-dopedĀ opticalĀ fiber
ļ® DVDĀ (digitalĀ video/versatileĀ disc)Ā DVDĀ (digitalĀ video/versatileĀ disc)Ā 
ļ® HardĀ coverĀ madeĀ fromĀ ta-CĀ Ā Ā HardĀ coverĀ madeĀ fromĀ ta-CĀ Ā Ā 
Electro photographic application:
one of the most common, everyday used application is electro photography or xerography
(Greek word, meaning is ā€œdry writingā€).
The first xerography was made by Carlson and Kornei in 1938(!) in Astoria NY (USA).
The really first experiment was made using sulfur, but later on Se was the basic
material. Recently a-Si:H films have been utilized instead.
Solar cells:
Potentially the most important application of the amorphous semiconductors a-Si:H is in
the direct conversion of sunlight to electric power.
This is a cheaper raw material than crystalline silicon. No structural damage!
For example: space shuttle use.
ļ® The conversation of solar light to electric power is available renewaable sources ofThe conversation of solar light to electric power is available renewaable sources of
energies.energies.
ļ® The basic physical principle involved is the absorption of photon resulting in theThe basic physical principle involved is the absorption of photon resulting in the
creation of electron-hole pairs; the excess electrons in the conduction band, and holescreation of electron-hole pairs; the excess electrons in the conduction band, and holes
in the valence band.in the valence band.
ļ® Internal junction field separates them before recombination.Internal junction field separates them before recombination.
THETHE
ENDEND
THANKTHANK
YOUYOU
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