SlideShare a Scribd company logo
1 of 5
Download to read offline
ISSN 2350-1049
International Journal of Recent Research in Interdisciplinary Sciences (IJRRIS)
Vol. 3, Issue 4, pp: (10-14), Month: October - December 2016, Available at: www.paperpublications.org
Page | 10
Paper Publications
Electricity Production by Microorganisms
Kaushiki.P.Pandey
Bsc. Msc. Dept. of Microbiology, Birla College Arts, Science & commerce University of Mumbai, India
Abstract: Microbial fuel cells (MFCs) are alternative source of producing electricity, yet not commercialized but
they shows production of electricity. The power produce by this experiment is limited but can be consider for
future aspect. This research carried out by various samples which show positive result. , its due to metabolic
activity which carried out in the anaerobic condition MFCs production of electricity is indirectly proportional to
time. This can be seen in all samples. The experiment is carried out by construction of two-chamber, in which
transfer of energy was carried out. The power production of the main mechanism in this experiment was by direct
transfer of electrons to the electrode by bacteria growing on the electrode cyclic voltammeter. The attachment of
bacteria on electrode was studied. The most bacteria which were isolated from the sample were Klebsiella
pneumonia, Escherichia coli, Pseudomonas aeruginosa.
Keywords: Microbial fuel cell, power density, electric energy generation, Alternative energy, electron, proton.
I. INTRODUCTION
The forecast of the world’s population reveals that by 2050 it will reach 9.4 billion and therefore there is an urgent need to
increase energy production by that time. In past centuries, fossil fuels have been a key factor for industrial and economic
development.(Vizhemehr et al., 2012) A unique type of fuel cell holding a promise in the long term is the bio-fuel cell
further work on cattle waste substrate for successful production of Bioelectricity by MFCs has been reported.(Tyagi et al.,
2012).Alternative source of power generation can be biological method.[1]
MFC is a device that converts chemical energy stored in the organic matter to electricity using microorganisms as the
biocatalyst. The organic matter is oxidized with the help of microorganisms, producing energy, electrons and protons. The
energy is stored by microorganisms and used for the growth. The electrons are brought to the anode from the inside of
microorganisms by the mediator, and flow to the cathode through copper wire. The protons go through the proton
exchange membrane (PEM) and enter the cathode chamber. They react with the oxygen and the electrons on the cathode,
producing water. In this way, the organic matter is converted to electricity. (Zhen long Li et al., 2007). The use of
microorganisms in fuel cell as a catalyst for electricity generation was known 40 years ago. When microorganisms
consume a substrate such as sugar in aerobic conditions they produce carbon dioxide and water. However when oxygen is
not present, they produce carbon dioxide, protons and electrons
C12
H22
O11
+ 13H2O ---> 12CO2
+ 48H +48e-
(Moawad.2013).
Our aim to analysis the power generation by MFCs using the bacterial culture from the waste sample. The study including
construct microbial fuel cells using various sample, to derive mathematical models to express voltage generated from the
cells as a continuous function of time. Evaluate the rate of change of the generated voltage with respect to time
extrapolate how long the microbial fuel cells stay functioning .Observation of a mixture of bio wastes does actually result
in high voltage.[1]Microbes in the anodic chamber of an MFC oxidize added substrates and generate electrons and
protons in the process. Carbon dioxide is produced as an oxidation product. However, there is no net carbon emission
because the carbon dioxide in the renewable biomass originally comes from the atmosphere in the photosynthesis process.
Unlike in a direct combustion process, the electrons are absorbed by the anode and are transported to the cathode through
an external circuit. After crossing a PEM or a salt bridge, the protons enter the cathodic chamber where they combine
ISSN 2350-1049
International Journal of Recent Research in Interdisciplinary Sciences (IJRRIS)
Vol. 3, Issue 4, pp: (10-14), Month: October - December 2016, Available at: www.paperpublications.org
Page | 11
Paper Publications
with oxygen to form water. Microbes in the anodic chamber extract electrons and protons in the dissimilative process of
oxidizing organic substrates (Rabaey and Verstraete, 2005)
Fig. 1 shows a schematic diagram of a typical MFC for producing electricity. It consists of anodic and cathodic chambers
partitioned by a proton exchange membrane (PEM) (Wilkinson, 2000; Gil et al., 2003).
Fig. 1. Schematic diagram of a typical two-chamber microbial fuel cell
II. METHOD & MATERIAL
The sample collection were carried from different places sources each set of 5 like Drain water, Kitchen waste, Cow dung
+ slurry, Organic waste + slurry+vermicompos, Orange peels, fish. Construction of two-chambers and salt bridge were
done. Incubation period of the sample was 5days, So that the metabolism of the bacteria takes place in anaerobic
condition. A salt solution, NaCl1g was added to each of the bio waste samples to make the mixture electrically
conductive. This mixture was placed in a sealed chamber to stop entering of oxygen, thus forcing the microorganism to
use anaerobic respiration. An electrode which was placed in the solution was act as the anode. In the second chamber of
the MFC was placed another sample solution and another electrode. This electrode, called the cathode was been positively
charged and would be the equivalent of the oxygen sink at the end of the electron transport chain. Connected the two
electrodes by a wire and completed the circuit and connected the two chambers by salt bridge. Preparation of salt bridges,
a water solution contented concentrations of 3% NaCl and 1.6% agar was prepared to boil for nearly 3 minutes. The hot
solution was poured into PVC pipe by sealing one end. The setup will thereafter allow cooling. The salt bridges were thus
ready for use. To increase the overall stack voltage or current, the five individual MFCs (MFC 01–MFC 05) were
respectively connect in series circuit. Variation in The voltage after stacking the MFCs in series circuit was being reported
at regular time Intervals. After making MFCs incubation take place for 5days
III. RESULT & DISCUSSION
The voltage production was varying between the samples. Production of voltage increases by connecting in series.
Electricity production was seen in 3phase Lag phase, stationary phase, and log phase. As the time was increases the
nutrient value was decreasing from the sample due to utilization by the organism. In 2010, A. ter Heine et al. constructed
a device capable of producing electricity and reducing Cu (II) (ion) to copper metal it was same result. We can say that
energy is directly proportional to bacteria present in sample so that by use of biosensor we may able to increases the
power generation. Kitchen waste gives significant result so we can say that organisms are getting high nutrition value
from the sample.in mixture of cow dung and slurry, slurry contain high soil bacteria which are able to reproduce in
anaerobic state so that it’s able to give significant power.
ISSN 2350-1049
International Journal of Recent Research in Interdisciplinary Sciences (IJRRIS)
Vol. 3, Issue 4, pp: (10-14), Month: October - December 2016, Available at: www.paperpublications.org
Page | 12
Paper Publications
TABLE I Qualitative analysis of samples for production of energy
Sr. Sample Energy Productivity
1 Drain water +
2 Kitchen waste ++
3 Cow dung + slurry ++
4 slurry, Organic waste + slurry+vermicompos +
5 Orange peels +
6 Fish -
Keys: + = Presence of electricity , - = Absence of electricity
a. Graphs: Samples incubated for 5 days showed electricity generation and its voltage was measureed at different
interval of time. Its graphical representation is presented in fig .2, fig .3
Fig 2: Electricity generated by kitchen waste sample
Fig 3: Electricity generated by cow dung + slurry sample
0
0.5
1
1.5
2
2.5
3
3.5
4
0 50 100 150 200
Volt
Time
day1
day2
day3
day4
day5
Linear (day1)
Linear (day2)
Linear (day3)
Linear (day4)
Linear (day5)
0
0.5
1
1.5
2
2.5
3
3.5
4
0 50 100 150 200
Volt
Time
day1
day2
day3
day4
day5
Linear (day1)
Linear (day2)
Linear (day3)
Linear (day4)
Linear (day5)
ISSN 2350-1049
International Journal of Recent Research in Interdisciplinary Sciences (IJRRIS)
Vol. 3, Issue 4, pp: (10-14), Month: October - December 2016, Available at: www.paperpublications.org
Page | 13
Paper Publications
b. Conclusion acknowledgement:
The authors would like express their appreciation for the partial financial support given for this research by Dept. of
Microbiology Birla College.
IV. CONCLUSION
Electricity generation not seen in high protein contained sample like fish Sample. Significantly electricity generation was
significantly on 1st day of sample voltage measurement. Electricity production was decreases as increase in day
REFERENCES
[1] K. Vizhemehr , H. R. Kariminia. and S. Yaghmaei (2012), Production Of Electricity Generation in a Duel Chamber
Microbial Fuel Cell, Iranian Journal of Chemical Engineering ,Vol. 9, No. 1
[2] A. Tyagi, S. Dwivedi, S. Mishra and A. D. Srivastav (2012), Studies on the optimization of Bioelectricityproduction
from industrial and domestic waste using immobilization of microbial cells ISABB, Journal of Biotechnology and
Bioinformatics, Vol. 2(2), pp. (18 – 25).
[3] Abhilasha Singh Mathuriya and V.N. Sharma.(2010)Treatment of Brewery Wastewater and Production of Electricity
through Microbial Fuel CellTechnology. International Journal ofBiotechnology and Biochemistry ISSN0973-2691
Volume 6 Number 1, pp. (71–80).
[4] AyhanDemibas. (2000)Biomass recourses facilities and biomass conversion processing for fuels and chemical.
Energy conversion and management. Elsevier vol-42(1357-1378)
[5] AyhanDemibas(2004) Combustion characteristics of different biomass fuels .Elsevier.Progress in Energy and
Combustion Science vol-30 (219–230)
[6] Ashley E. Franks and Kelly P. Nevins (2010) Microbial Fuel Cells, A Current Review Energies, vol-3, (899-919)
[7] Abhilasha Singh Mathuriya and V.N. Sharma, Treatment of Brewery Wastewater and Production of Electricity
through Microbial Fuel Cell Technology .International Journal of Biotechnology and Biochemistry ISSN 0973-2691
Volume 6 Number 1 (2010) pp. 71–80
[8] Andre Gruning, Nelli J Beecroft and Claudio Avignone-Rossa(2014)Metabolic composition of anode community
predicts electrical power inmicrobial fuel cells.Biorxiv
[9] Khazraei Vizhemehr, H. R. Kariminia, S. YaghmaeiAzadi Ave.(2012),Prediction of Electricity Generation in a Duel
Chamber Microbial Fuel Cell Iranian Journal of Chemical Engineering Vol. 9, No. 1 (Winter), IAChE
[10] B.K. Pandey, V. Mishra, S. Agrawal. (2011) Production of bio-electricity during wastewater treatment using a single
chamber microbial fuel cell.International Journal of Engineering, Science and Technology Vol. 3, No. 4,2011, pp.
(42-47)
[11] Bhavik K. Acharya ,HilorPathak , SarayuMohana , YogeshShouche, Vasdev Singh ,DattaMadamwar. (2011) Kinetic
modelling and microbialcommunity assessment of anaerobic biphasic fixed film bioreactor treatingdistillery spent
wash.Elseviervol-45(4248-4259)
[12] Bookimin and Brucee.Logan(2004) Continuous Electricity Generation from Domestic Wastewater and Organic
Substrates in a Flat Plate Microbial Fuel cell Environ. Sci. Technol. Vol-38 (5809-5814)
[13] Deepak Pant, Gilbert Van Bogaert, Ludo Diels, and Karolien Vanbroekhoven(2010) A review of the substrates used
in microbialfuel cells (MFCs) for sustainable energy production. Elsevier, Bioresource Technology vol-101 (1533–
1543)
[14] Derek R Lovely (2006) Microbial fuel cells: novel microbial physiologies and engineering approaches Elsevier
Current Opinion in Biotechnology, vol-17(327–332)
ISSN 2350-1049
International Journal of Recent Research in Interdisciplinary Sciences (IJRRIS)
Vol. 3, Issue 4, pp: (10-14), Month: October - December 2016, Available at: www.paperpublications.org
Page | 14
Paper Publications
[15] Derek R Lovley(2008) The microbe electric: conversion of organic matter to electricity. Elsevier,Current Opinion in
biotechnology, vol-19 (564–571)
[16] Hefacheng, yanguozhang,aihongmeng,and Qinghai li (2007), Municipal Solid Waste FueledPower Generation in
China: A CaseStudy of Waste-to-Energy inChangchun City Environ. Sci. Technol. Vol-41, (7509-7515)
[17] Derek R. Lovely (2011) Powering microbes with electricity: direct electron transfer from electrodes to microbes
Environmental Microbiology Reports3(1), (27–35)
[18] Emad Y. Moawad (2013) Growth Energy of Bacteria and the Associated Electricity Generation in Fuel
Cells.Elsevier, Bioengineering and Bioscience vol-1 (5-10)
[19] Hong liu, Stephen grot, and Bruce .e. Logan (2005) Electrochemically Assisted Microbial Production of Hydrogen
from AcetateEnviron. Sci. Technol,vol- 39, (4317-4320)
[20] Hong liu, shaoancheng, and Bruce .e. Logan (2005) Production of Electricity from Acetate or Butyrate Using a
Single-Chamber Microbial Fuel Cell Environ. Sci. Technol., Vol- 39, (658-662)
[21] H.p.Bennetto (1990) electrical generation by microorganism Biotechnology education vol-1 (163-168)
[22] Jun Liu ,TingGuo ,Dong Wang ,Hanjie Ying(2015) Clostridium beijerinckii mutant obtained atmospheric pressure
glow discharge generates enhanced electricity in a microbial fuel cell,BiotechnologyLettvol-37(95–100)
[23] Matteo Daghio, Isabella Gandolfi, Giuseppina Bestetti, Andrea Franzetti, Edoardo Guerrini and Pierangela Cristiani
(2015) Anodic and cathodic microbial communities in single chamber microbial fuel cells .New Biotechnology
Volume 32, Number 1
[24] Peter Weiland (2010) Biogas production: current state and perspectives Springer-Verlag, Appl Microbial
Biotechnology Vol-85 (849–860)
[25] R.A. Bullen, T.C. Arnot, J.B. Lakeman, F.C. Walsh (2006) Biofuel cells and their development Biosensors and
Bioelectronics .Elsevier vol-21(2006) 2015–2045
[26] Steven K. Rose &ElmarKriegler&Ruben Bibas& Katherine Calvin &Alexander Popp &Detlef P. van Vuuren& John
Weyant(2014) Bio energyin energy transformationand climate management Climatic Change vol-123(477–493)
[27] Sung T. Oh, Jung Rae Kim, Giuliano. Premier , Tae Ho Lee , Changwon Kim ,William T. Sloan (2010)Sustainable
wastewater treatment: How might microbial fuel cells contribute Biotechnology Advances vol- 28(871–881)
[28] Vanita Roshan Nimje , Chien-Cheng Chen, Hau-Ren Chen, Chien-Yen Chen Min-Jen Tseng, Kai-Chien Cheng,
Ruey-Chyuan Shih and Young-Fo Chang (2012) A Single-Chamber Microbial Fuel Cell without an Air Cathode Int.
J. Mol. Sci.,vol-13,( 3933-3948)
[29] Zhuwei Du, Haoran Li, Tingyue GU (2007) states of the art review on microbial fuel cells: A promising technology
for wastewater treatment and bioenergy. Elsevier. Biotechnology Advances vol-25 (464–482)

More Related Content

What's hot

Bio fuel cells | Sludge Treatment
Bio fuel cells | Sludge TreatmentBio fuel cells | Sludge Treatment
Bio fuel cells | Sludge TreatmentVishal Doshi
 
UWE John Greenman Microbial Fuel Cells Future of Renewables Low Carbon South ...
UWE John Greenman Microbial Fuel Cells Future of Renewables Low Carbon South ...UWE John Greenman Microbial Fuel Cells Future of Renewables Low Carbon South ...
UWE John Greenman Microbial Fuel Cells Future of Renewables Low Carbon South ...The Future Economy Network
 
Microbial Fuel Cell
Microbial Fuel CellMicrobial Fuel Cell
Microbial Fuel CellMarIa MajeEd
 
Special topic seminar microbial fuel cells
Special topic seminar microbial fuel cellsSpecial topic seminar microbial fuel cells
Special topic seminar microbial fuel cellsprasuna3085
 
Recent developments in microbial fuel cell
Recent developments in microbial fuel cellRecent developments in microbial fuel cell
Recent developments in microbial fuel cellsreenath vn
 
Microbial fuel cell (MFC)
Microbial fuel cell (MFC)Microbial fuel cell (MFC)
Microbial fuel cell (MFC)Sudhanshu Yadav
 
Molecular Mean Field Theory of ions in Bulk and Channels
Molecular Mean Field Theory of ions in Bulk and ChannelsMolecular Mean Field Theory of ions in Bulk and Channels
Molecular Mean Field Theory of ions in Bulk and ChannelsBob Eisenberg
 
The first cells
The first cellsThe first cells
The first cellszqc
 

What's hot (20)

SEMINAR 2
SEMINAR 2SEMINAR 2
SEMINAR 2
 
13-Microbial_Fuel_Cells.pdf
13-Microbial_Fuel_Cells.pdf13-Microbial_Fuel_Cells.pdf
13-Microbial_Fuel_Cells.pdf
 
Bio fuel cells | Sludge Treatment
Bio fuel cells | Sludge TreatmentBio fuel cells | Sludge Treatment
Bio fuel cells | Sludge Treatment
 
UWE John Greenman Microbial Fuel Cells Future of Renewables Low Carbon South ...
UWE John Greenman Microbial Fuel Cells Future of Renewables Low Carbon South ...UWE John Greenman Microbial Fuel Cells Future of Renewables Low Carbon South ...
UWE John Greenman Microbial Fuel Cells Future of Renewables Low Carbon South ...
 
Microbial fuel cell.
Microbial fuel cell.Microbial fuel cell.
Microbial fuel cell.
 
Microbial fuel cell
Microbial fuel cellMicrobial fuel cell
Microbial fuel cell
 
Microbial Fuel Cell
Microbial Fuel CellMicrobial Fuel Cell
Microbial Fuel Cell
 
Microbial fuel cells
Microbial fuel cellsMicrobial fuel cells
Microbial fuel cells
 
Harnessing Microbe-Electrode Interactions for Bioenergy
Harnessing Microbe-Electrode Interactions for BioenergyHarnessing Microbe-Electrode Interactions for Bioenergy
Harnessing Microbe-Electrode Interactions for Bioenergy
 
Microbial Fuel Cells
Microbial Fuel CellsMicrobial Fuel Cells
Microbial Fuel Cells
 
Special topic seminar microbial fuel cells
Special topic seminar microbial fuel cellsSpecial topic seminar microbial fuel cells
Special topic seminar microbial fuel cells
 
Recent developments in microbial fuel cell
Recent developments in microbial fuel cellRecent developments in microbial fuel cell
Recent developments in microbial fuel cell
 
Poster bebe
Poster bebePoster bebe
Poster bebe
 
microbial fuel cell Thisis propasal
microbial fuel cell Thisis propasalmicrobial fuel cell Thisis propasal
microbial fuel cell Thisis propasal
 
Chapter48
Chapter48Chapter48
Chapter48
 
Microbial fuel cell (MFC)
Microbial fuel cell (MFC)Microbial fuel cell (MFC)
Microbial fuel cell (MFC)
 
178 dp & ts
178 dp & ts178 dp & ts
178 dp & ts
 
Molecular Mean Field Theory of ions in Bulk and Channels
Molecular Mean Field Theory of ions in Bulk and ChannelsMolecular Mean Field Theory of ions in Bulk and Channels
Molecular Mean Field Theory of ions in Bulk and Channels
 
B2 revision
B2 revisionB2 revision
B2 revision
 
The first cells
The first cellsThe first cells
The first cells
 

Viewers also liked

Heart Diseases Diagnosis Using Data Mining Techniques
Heart Diseases Diagnosis Using Data Mining TechniquesHeart Diseases Diagnosis Using Data Mining Techniques
Heart Diseases Diagnosis Using Data Mining Techniquespaperpublications3
 
Intercropping of Haricot Bean (Phaseolus vulgaris L.) with stevia (Stevia reb...
Intercropping of Haricot Bean (Phaseolus vulgaris L.) with stevia (Stevia reb...Intercropping of Haricot Bean (Phaseolus vulgaris L.) with stevia (Stevia reb...
Intercropping of Haricot Bean (Phaseolus vulgaris L.) with stevia (Stevia reb...paperpublications3
 
Response of Maize (Zea mays L.) for Moisture Stress Condition at Different Gr...
Response of Maize (Zea mays L.) for Moisture Stress Condition at Different Gr...Response of Maize (Zea mays L.) for Moisture Stress Condition at Different Gr...
Response of Maize (Zea mays L.) for Moisture Stress Condition at Different Gr...paperpublications3
 
Effect of Passive Damping on the Performance of Buck Converter for Magnet Load
Effect of Passive Damping on the Performance of Buck Converter for Magnet LoadEffect of Passive Damping on the Performance of Buck Converter for Magnet Load
Effect of Passive Damping on the Performance of Buck Converter for Magnet Loadpaperpublications3
 
Influence of farmer characteristics on the production of groundnuts, a case o...
Influence of farmer characteristics on the production of groundnuts, a case o...Influence of farmer characteristics on the production of groundnuts, a case o...
Influence of farmer characteristics on the production of groundnuts, a case o...paperpublications3
 
The Optimization of the Generalized Coplanar Impulsive Maneuvers (Two Impulse...
The Optimization of the Generalized Coplanar Impulsive Maneuvers (Two Impulse...The Optimization of the Generalized Coplanar Impulsive Maneuvers (Two Impulse...
The Optimization of the Generalized Coplanar Impulsive Maneuvers (Two Impulse...paperpublications3
 
EFFECTS OF SMOKING IN THE PUBLIC PLACES: A PROPOSAL FOR SAFE SMOKING PLACES
EFFECTS OF SMOKING IN THE PUBLIC PLACES: A PROPOSAL FOR SAFE SMOKING PLACESEFFECTS OF SMOKING IN THE PUBLIC PLACES: A PROPOSAL FOR SAFE SMOKING PLACES
EFFECTS OF SMOKING IN THE PUBLIC PLACES: A PROPOSAL FOR SAFE SMOKING PLACESpaperpublications3
 
SURVEY ON POTENTIALS AND CONSTRAINTS OF SHADE TREE SPECIES FOR ARABICA COFFEE...
SURVEY ON POTENTIALS AND CONSTRAINTS OF SHADE TREE SPECIES FOR ARABICA COFFEE...SURVEY ON POTENTIALS AND CONSTRAINTS OF SHADE TREE SPECIES FOR ARABICA COFFEE...
SURVEY ON POTENTIALS AND CONSTRAINTS OF SHADE TREE SPECIES FOR ARABICA COFFEE...paperpublications3
 
Spearmint (Mentha spicata L.) Response to Deficit Irrigation
Spearmint (Mentha spicata L.) Response to Deficit IrrigationSpearmint (Mentha spicata L.) Response to Deficit Irrigation
Spearmint (Mentha spicata L.) Response to Deficit Irrigationpaperpublications3
 
Factors Influencing Willingness to Recycle E-Waste in Kisumu City Central Bus...
Factors Influencing Willingness to Recycle E-Waste in Kisumu City Central Bus...Factors Influencing Willingness to Recycle E-Waste in Kisumu City Central Bus...
Factors Influencing Willingness to Recycle E-Waste in Kisumu City Central Bus...paperpublications3
 
Influence of Farmer Level of Education on the Practice of Improved Agricultur...
Influence of Farmer Level of Education on the Practice of Improved Agricultur...Influence of Farmer Level of Education on the Practice of Improved Agricultur...
Influence of Farmer Level of Education on the Practice of Improved Agricultur...paperpublications3
 

Viewers also liked (11)

Heart Diseases Diagnosis Using Data Mining Techniques
Heart Diseases Diagnosis Using Data Mining TechniquesHeart Diseases Diagnosis Using Data Mining Techniques
Heart Diseases Diagnosis Using Data Mining Techniques
 
Intercropping of Haricot Bean (Phaseolus vulgaris L.) with stevia (Stevia reb...
Intercropping of Haricot Bean (Phaseolus vulgaris L.) with stevia (Stevia reb...Intercropping of Haricot Bean (Phaseolus vulgaris L.) with stevia (Stevia reb...
Intercropping of Haricot Bean (Phaseolus vulgaris L.) with stevia (Stevia reb...
 
Response of Maize (Zea mays L.) for Moisture Stress Condition at Different Gr...
Response of Maize (Zea mays L.) for Moisture Stress Condition at Different Gr...Response of Maize (Zea mays L.) for Moisture Stress Condition at Different Gr...
Response of Maize (Zea mays L.) for Moisture Stress Condition at Different Gr...
 
Effect of Passive Damping on the Performance of Buck Converter for Magnet Load
Effect of Passive Damping on the Performance of Buck Converter for Magnet LoadEffect of Passive Damping on the Performance of Buck Converter for Magnet Load
Effect of Passive Damping on the Performance of Buck Converter for Magnet Load
 
Influence of farmer characteristics on the production of groundnuts, a case o...
Influence of farmer characteristics on the production of groundnuts, a case o...Influence of farmer characteristics on the production of groundnuts, a case o...
Influence of farmer characteristics on the production of groundnuts, a case o...
 
The Optimization of the Generalized Coplanar Impulsive Maneuvers (Two Impulse...
The Optimization of the Generalized Coplanar Impulsive Maneuvers (Two Impulse...The Optimization of the Generalized Coplanar Impulsive Maneuvers (Two Impulse...
The Optimization of the Generalized Coplanar Impulsive Maneuvers (Two Impulse...
 
EFFECTS OF SMOKING IN THE PUBLIC PLACES: A PROPOSAL FOR SAFE SMOKING PLACES
EFFECTS OF SMOKING IN THE PUBLIC PLACES: A PROPOSAL FOR SAFE SMOKING PLACESEFFECTS OF SMOKING IN THE PUBLIC PLACES: A PROPOSAL FOR SAFE SMOKING PLACES
EFFECTS OF SMOKING IN THE PUBLIC PLACES: A PROPOSAL FOR SAFE SMOKING PLACES
 
SURVEY ON POTENTIALS AND CONSTRAINTS OF SHADE TREE SPECIES FOR ARABICA COFFEE...
SURVEY ON POTENTIALS AND CONSTRAINTS OF SHADE TREE SPECIES FOR ARABICA COFFEE...SURVEY ON POTENTIALS AND CONSTRAINTS OF SHADE TREE SPECIES FOR ARABICA COFFEE...
SURVEY ON POTENTIALS AND CONSTRAINTS OF SHADE TREE SPECIES FOR ARABICA COFFEE...
 
Spearmint (Mentha spicata L.) Response to Deficit Irrigation
Spearmint (Mentha spicata L.) Response to Deficit IrrigationSpearmint (Mentha spicata L.) Response to Deficit Irrigation
Spearmint (Mentha spicata L.) Response to Deficit Irrigation
 
Factors Influencing Willingness to Recycle E-Waste in Kisumu City Central Bus...
Factors Influencing Willingness to Recycle E-Waste in Kisumu City Central Bus...Factors Influencing Willingness to Recycle E-Waste in Kisumu City Central Bus...
Factors Influencing Willingness to Recycle E-Waste in Kisumu City Central Bus...
 
Influence of Farmer Level of Education on the Practice of Improved Agricultur...
Influence of Farmer Level of Education on the Practice of Improved Agricultur...Influence of Farmer Level of Education on the Practice of Improved Agricultur...
Influence of Farmer Level of Education on the Practice of Improved Agricultur...
 

Similar to Electricity Production by Microorganisms

Microbial fuel cell.pptx
Microbial fuel cell.pptxMicrobial fuel cell.pptx
Microbial fuel cell.pptxHajira Mahmood
 
Electrical Power Generation with Himalayan Mud Soil using Microbial Fuel Cell
Electrical Power Generation with Himalayan Mud Soil using Microbial Fuel CellElectrical Power Generation with Himalayan Mud Soil using Microbial Fuel Cell
Electrical Power Generation with Himalayan Mud Soil using Microbial Fuel Cellijeei-iaes
 
“Microbial Biomass” A Renewable Energy For The Future
“Microbial Biomass” A Renewable Energy For The Future“Microbial Biomass” A Renewable Energy For The Future
“Microbial Biomass” A Renewable Energy For The FutureAnik Banik
 
 Microbial Fuel Cell (MFC) based Sewage Treatment Plants (STP)
 Microbial Fuel Cell (MFC) based Sewage Treatment Plants (STP) Microbial Fuel Cell (MFC) based Sewage Treatment Plants (STP)
 Microbial Fuel Cell (MFC) based Sewage Treatment Plants (STP)theijes
 
MICROBIAL FUEL CELLS-PPT
MICROBIAL FUEL CELLS-PPTMICROBIAL FUEL CELLS-PPT
MICROBIAL FUEL CELLS-PPTShabeeba V A
 
IRJET- Study of Single Chamber and Double Chamber Efficiency and Losses o...
IRJET-  	  Study of Single Chamber and Double Chamber Efficiency and Losses o...IRJET-  	  Study of Single Chamber and Double Chamber Efficiency and Losses o...
IRJET- Study of Single Chamber and Double Chamber Efficiency and Losses o...IRJET Journal
 
10.1080@21655979.2016.1267883
10.1080@21655979.2016.126788310.1080@21655979.2016.1267883
10.1080@21655979.2016.1267883Biswanath Bhunia
 
LAARABI532015JOBAN1799 (1)
LAARABI532015JOBAN1799 (1)LAARABI532015JOBAN1799 (1)
LAARABI532015JOBAN1799 (1)Said Laarabi
 
Unification of ETP & MFC: Sustainable Development, Environmental Safety, & Re...
Unification of ETP & MFC: Sustainable Development, Environmental Safety, & Re...Unification of ETP & MFC: Sustainable Development, Environmental Safety, & Re...
Unification of ETP & MFC: Sustainable Development, Environmental Safety, & Re...Abdullah Al Moinee
 
Effect of porosity on ocv and westwater treatment efficiency of a clay partit...
Effect of porosity on ocv and westwater treatment efficiency of a clay partit...Effect of porosity on ocv and westwater treatment efficiency of a clay partit...
Effect of porosity on ocv and westwater treatment efficiency of a clay partit...IAEME Publication
 
EFFECT OF POROSITY ON OCV AND WASTEWATER TREATMENT EFFICIENCY OF A CLAY PARTI...
EFFECT OF POROSITY ON OCV AND WASTEWATER TREATMENT EFFICIENCY OF A CLAY PARTI...EFFECT OF POROSITY ON OCV AND WASTEWATER TREATMENT EFFICIENCY OF A CLAY PARTI...
EFFECT OF POROSITY ON OCV AND WASTEWATER TREATMENT EFFICIENCY OF A CLAY PARTI...IAEME Publication
 
MFC Presentation UG Presentation
MFC Presentation UG PresentationMFC Presentation UG Presentation
MFC Presentation UG PresentationMAINAK SINGHA BARMA
 
Hydrogen production from glycerol using microbial electrolysis cell
Hydrogen production from glycerol using microbial electrolysis cellHydrogen production from glycerol using microbial electrolysis cell
Hydrogen production from glycerol using microbial electrolysis celleSAT Publishing House
 
Effect of electrodes, aeration, salt bridges and source of microbes in a medi...
Effect of electrodes, aeration, salt bridges and source of microbes in a medi...Effect of electrodes, aeration, salt bridges and source of microbes in a medi...
Effect of electrodes, aeration, salt bridges and source of microbes in a medi...Abdullah Al Moinee
 
mfc.results 1-10 (1).pptx
mfc.results 1-10 (1).pptxmfc.results 1-10 (1).pptx
mfc.results 1-10 (1).pptxssuserc8380e
 
MICROBIAL FUEL CELL (MFC) TECHNOLOGY FOR HOUSEHOLD WASTE REDUCTION AND BIOENE...
MICROBIAL FUEL CELL (MFC) TECHNOLOGY FOR HOUSEHOLD WASTE REDUCTION AND BIOENE...MICROBIAL FUEL CELL (MFC) TECHNOLOGY FOR HOUSEHOLD WASTE REDUCTION AND BIOENE...
MICROBIAL FUEL CELL (MFC) TECHNOLOGY FOR HOUSEHOLD WASTE REDUCTION AND BIOENE...civej
 
Substrate treatment for the increment of electric power potential from plants...
Substrate treatment for the increment of electric power potential from plants...Substrate treatment for the increment of electric power potential from plants...
Substrate treatment for the increment of electric power potential from plants...IJECEIAES
 

Similar to Electricity Production by Microorganisms (20)

Microbial fuel cell.pptx
Microbial fuel cell.pptxMicrobial fuel cell.pptx
Microbial fuel cell.pptx
 
Electrical Power Generation with Himalayan Mud Soil using Microbial Fuel Cell
Electrical Power Generation with Himalayan Mud Soil using Microbial Fuel CellElectrical Power Generation with Himalayan Mud Soil using Microbial Fuel Cell
Electrical Power Generation with Himalayan Mud Soil using Microbial Fuel Cell
 
“Microbial Biomass” A Renewable Energy For The Future
“Microbial Biomass” A Renewable Energy For The Future“Microbial Biomass” A Renewable Energy For The Future
“Microbial Biomass” A Renewable Energy For The Future
 
Optimization of growth medium in microbial fuel cell for electricity producti...
Optimization of growth medium in microbial fuel cell for electricity producti...Optimization of growth medium in microbial fuel cell for electricity producti...
Optimization of growth medium in microbial fuel cell for electricity producti...
 
 Microbial Fuel Cell (MFC) based Sewage Treatment Plants (STP)
 Microbial Fuel Cell (MFC) based Sewage Treatment Plants (STP) Microbial Fuel Cell (MFC) based Sewage Treatment Plants (STP)
 Microbial Fuel Cell (MFC) based Sewage Treatment Plants (STP)
 
Evaluation of the effect of cultural conditions for efficient power generatio...
Evaluation of the effect of cultural conditions for efficient power generatio...Evaluation of the effect of cultural conditions for efficient power generatio...
Evaluation of the effect of cultural conditions for efficient power generatio...
 
MICROBIAL FUEL CELLS-PPT
MICROBIAL FUEL CELLS-PPTMICROBIAL FUEL CELLS-PPT
MICROBIAL FUEL CELLS-PPT
 
IRJET- Study of Single Chamber and Double Chamber Efficiency and Losses o...
IRJET-  	  Study of Single Chamber and Double Chamber Efficiency and Losses o...IRJET-  	  Study of Single Chamber and Double Chamber Efficiency and Losses o...
IRJET- Study of Single Chamber and Double Chamber Efficiency and Losses o...
 
10.1080@21655979.2016.1267883
10.1080@21655979.2016.126788310.1080@21655979.2016.1267883
10.1080@21655979.2016.1267883
 
LAARABI532015JOBAN1799 (1)
LAARABI532015JOBAN1799 (1)LAARABI532015JOBAN1799 (1)
LAARABI532015JOBAN1799 (1)
 
Unification of ETP & MFC: Sustainable Development, Environmental Safety, & Re...
Unification of ETP & MFC: Sustainable Development, Environmental Safety, & Re...Unification of ETP & MFC: Sustainable Development, Environmental Safety, & Re...
Unification of ETP & MFC: Sustainable Development, Environmental Safety, & Re...
 
Effect of porosity on ocv and westwater treatment efficiency of a clay partit...
Effect of porosity on ocv and westwater treatment efficiency of a clay partit...Effect of porosity on ocv and westwater treatment efficiency of a clay partit...
Effect of porosity on ocv and westwater treatment efficiency of a clay partit...
 
EFFECT OF POROSITY ON OCV AND WASTEWATER TREATMENT EFFICIENCY OF A CLAY PARTI...
EFFECT OF POROSITY ON OCV AND WASTEWATER TREATMENT EFFICIENCY OF A CLAY PARTI...EFFECT OF POROSITY ON OCV AND WASTEWATER TREATMENT EFFICIENCY OF A CLAY PARTI...
EFFECT OF POROSITY ON OCV AND WASTEWATER TREATMENT EFFICIENCY OF A CLAY PARTI...
 
Microbial fuel cell ppt
Microbial fuel cell pptMicrobial fuel cell ppt
Microbial fuel cell ppt
 
MFC Presentation UG Presentation
MFC Presentation UG PresentationMFC Presentation UG Presentation
MFC Presentation UG Presentation
 
Hydrogen production from glycerol using microbial electrolysis cell
Hydrogen production from glycerol using microbial electrolysis cellHydrogen production from glycerol using microbial electrolysis cell
Hydrogen production from glycerol using microbial electrolysis cell
 
Effect of electrodes, aeration, salt bridges and source of microbes in a medi...
Effect of electrodes, aeration, salt bridges and source of microbes in a medi...Effect of electrodes, aeration, salt bridges and source of microbes in a medi...
Effect of electrodes, aeration, salt bridges and source of microbes in a medi...
 
mfc.results 1-10 (1).pptx
mfc.results 1-10 (1).pptxmfc.results 1-10 (1).pptx
mfc.results 1-10 (1).pptx
 
MICROBIAL FUEL CELL (MFC) TECHNOLOGY FOR HOUSEHOLD WASTE REDUCTION AND BIOENE...
MICROBIAL FUEL CELL (MFC) TECHNOLOGY FOR HOUSEHOLD WASTE REDUCTION AND BIOENE...MICROBIAL FUEL CELL (MFC) TECHNOLOGY FOR HOUSEHOLD WASTE REDUCTION AND BIOENE...
MICROBIAL FUEL CELL (MFC) TECHNOLOGY FOR HOUSEHOLD WASTE REDUCTION AND BIOENE...
 
Substrate treatment for the increment of electric power potential from plants...
Substrate treatment for the increment of electric power potential from plants...Substrate treatment for the increment of electric power potential from plants...
Substrate treatment for the increment of electric power potential from plants...
 

Recently uploaded

_Math 4-Q4 Week 5.pptx Steps in Collecting Data
_Math 4-Q4 Week 5.pptx Steps in Collecting Data_Math 4-Q4 Week 5.pptx Steps in Collecting Data
_Math 4-Q4 Week 5.pptx Steps in Collecting DataJhengPantaleon
 
The basics of sentences session 2pptx copy.pptx
The basics of sentences session 2pptx copy.pptxThe basics of sentences session 2pptx copy.pptx
The basics of sentences session 2pptx copy.pptxheathfieldcps1
 
POINT- BIOCHEMISTRY SEM 2 ENZYMES UNIT 5.pptx
POINT- BIOCHEMISTRY SEM 2 ENZYMES UNIT 5.pptxPOINT- BIOCHEMISTRY SEM 2 ENZYMES UNIT 5.pptx
POINT- BIOCHEMISTRY SEM 2 ENZYMES UNIT 5.pptxSayali Powar
 
Separation of Lanthanides/ Lanthanides and Actinides
Separation of Lanthanides/ Lanthanides and ActinidesSeparation of Lanthanides/ Lanthanides and Actinides
Separation of Lanthanides/ Lanthanides and ActinidesFatimaKhan178732
 
Presiding Officer Training module 2024 lok sabha elections
Presiding Officer Training module 2024 lok sabha electionsPresiding Officer Training module 2024 lok sabha elections
Presiding Officer Training module 2024 lok sabha electionsanshu789521
 
Concept of Vouching. B.Com(Hons) /B.Compdf
Concept of Vouching. B.Com(Hons) /B.CompdfConcept of Vouching. B.Com(Hons) /B.Compdf
Concept of Vouching. B.Com(Hons) /B.CompdfUmakantAnnand
 
Employee wellbeing at the workplace.pptx
Employee wellbeing at the workplace.pptxEmployee wellbeing at the workplace.pptx
Employee wellbeing at the workplace.pptxNirmalaLoungPoorunde1
 
Accessible design: Minimum effort, maximum impact
Accessible design: Minimum effort, maximum impactAccessible design: Minimum effort, maximum impact
Accessible design: Minimum effort, maximum impactdawncurless
 
Sanyam Choudhary Chemistry practical.pdf
Sanyam Choudhary Chemistry practical.pdfSanyam Choudhary Chemistry practical.pdf
Sanyam Choudhary Chemistry practical.pdfsanyamsingh5019
 
Incoming and Outgoing Shipments in 1 STEP Using Odoo 17
Incoming and Outgoing Shipments in 1 STEP Using Odoo 17Incoming and Outgoing Shipments in 1 STEP Using Odoo 17
Incoming and Outgoing Shipments in 1 STEP Using Odoo 17Celine George
 
The Most Excellent Way | 1 Corinthians 13
The Most Excellent Way | 1 Corinthians 13The Most Excellent Way | 1 Corinthians 13
The Most Excellent Way | 1 Corinthians 13Steve Thomason
 
Industrial Policy - 1948, 1956, 1973, 1977, 1980, 1991
Industrial Policy - 1948, 1956, 1973, 1977, 1980, 1991Industrial Policy - 1948, 1956, 1973, 1977, 1980, 1991
Industrial Policy - 1948, 1956, 1973, 1977, 1980, 1991RKavithamani
 
Solving Puzzles Benefits Everyone (English).pptx
Solving Puzzles Benefits Everyone (English).pptxSolving Puzzles Benefits Everyone (English).pptx
Solving Puzzles Benefits Everyone (English).pptxOH TEIK BIN
 
SOCIAL AND HISTORICAL CONTEXT - LFTVD.pptx
SOCIAL AND HISTORICAL CONTEXT - LFTVD.pptxSOCIAL AND HISTORICAL CONTEXT - LFTVD.pptx
SOCIAL AND HISTORICAL CONTEXT - LFTVD.pptxiammrhaywood
 
Hybridoma Technology ( Production , Purification , and Application )
Hybridoma Technology  ( Production , Purification , and Application  ) Hybridoma Technology  ( Production , Purification , and Application  )
Hybridoma Technology ( Production , Purification , and Application ) Sakshi Ghasle
 
Introduction to AI in Higher Education_draft.pptx
Introduction to AI in Higher Education_draft.pptxIntroduction to AI in Higher Education_draft.pptx
Introduction to AI in Higher Education_draft.pptxpboyjonauth
 
Alper Gobel In Media Res Media Component
Alper Gobel In Media Res Media ComponentAlper Gobel In Media Res Media Component
Alper Gobel In Media Res Media ComponentInMediaRes1
 
Grant Readiness 101 TechSoup and Remy Consulting
Grant Readiness 101 TechSoup and Remy ConsultingGrant Readiness 101 TechSoup and Remy Consulting
Grant Readiness 101 TechSoup and Remy ConsultingTechSoup
 

Recently uploaded (20)

_Math 4-Q4 Week 5.pptx Steps in Collecting Data
_Math 4-Q4 Week 5.pptx Steps in Collecting Data_Math 4-Q4 Week 5.pptx Steps in Collecting Data
_Math 4-Q4 Week 5.pptx Steps in Collecting Data
 
The basics of sentences session 2pptx copy.pptx
The basics of sentences session 2pptx copy.pptxThe basics of sentences session 2pptx copy.pptx
The basics of sentences session 2pptx copy.pptx
 
POINT- BIOCHEMISTRY SEM 2 ENZYMES UNIT 5.pptx
POINT- BIOCHEMISTRY SEM 2 ENZYMES UNIT 5.pptxPOINT- BIOCHEMISTRY SEM 2 ENZYMES UNIT 5.pptx
POINT- BIOCHEMISTRY SEM 2 ENZYMES UNIT 5.pptx
 
Separation of Lanthanides/ Lanthanides and Actinides
Separation of Lanthanides/ Lanthanides and ActinidesSeparation of Lanthanides/ Lanthanides and Actinides
Separation of Lanthanides/ Lanthanides and Actinides
 
Presiding Officer Training module 2024 lok sabha elections
Presiding Officer Training module 2024 lok sabha electionsPresiding Officer Training module 2024 lok sabha elections
Presiding Officer Training module 2024 lok sabha elections
 
Concept of Vouching. B.Com(Hons) /B.Compdf
Concept of Vouching. B.Com(Hons) /B.CompdfConcept of Vouching. B.Com(Hons) /B.Compdf
Concept of Vouching. B.Com(Hons) /B.Compdf
 
Employee wellbeing at the workplace.pptx
Employee wellbeing at the workplace.pptxEmployee wellbeing at the workplace.pptx
Employee wellbeing at the workplace.pptx
 
Accessible design: Minimum effort, maximum impact
Accessible design: Minimum effort, maximum impactAccessible design: Minimum effort, maximum impact
Accessible design: Minimum effort, maximum impact
 
Model Call Girl in Tilak Nagar Delhi reach out to us at 🔝9953056974🔝
Model Call Girl in Tilak Nagar Delhi reach out to us at 🔝9953056974🔝Model Call Girl in Tilak Nagar Delhi reach out to us at 🔝9953056974🔝
Model Call Girl in Tilak Nagar Delhi reach out to us at 🔝9953056974🔝
 
Sanyam Choudhary Chemistry practical.pdf
Sanyam Choudhary Chemistry practical.pdfSanyam Choudhary Chemistry practical.pdf
Sanyam Choudhary Chemistry practical.pdf
 
Incoming and Outgoing Shipments in 1 STEP Using Odoo 17
Incoming and Outgoing Shipments in 1 STEP Using Odoo 17Incoming and Outgoing Shipments in 1 STEP Using Odoo 17
Incoming and Outgoing Shipments in 1 STEP Using Odoo 17
 
The Most Excellent Way | 1 Corinthians 13
The Most Excellent Way | 1 Corinthians 13The Most Excellent Way | 1 Corinthians 13
The Most Excellent Way | 1 Corinthians 13
 
Industrial Policy - 1948, 1956, 1973, 1977, 1980, 1991
Industrial Policy - 1948, 1956, 1973, 1977, 1980, 1991Industrial Policy - 1948, 1956, 1973, 1977, 1980, 1991
Industrial Policy - 1948, 1956, 1973, 1977, 1980, 1991
 
Solving Puzzles Benefits Everyone (English).pptx
Solving Puzzles Benefits Everyone (English).pptxSolving Puzzles Benefits Everyone (English).pptx
Solving Puzzles Benefits Everyone (English).pptx
 
SOCIAL AND HISTORICAL CONTEXT - LFTVD.pptx
SOCIAL AND HISTORICAL CONTEXT - LFTVD.pptxSOCIAL AND HISTORICAL CONTEXT - LFTVD.pptx
SOCIAL AND HISTORICAL CONTEXT - LFTVD.pptx
 
Hybridoma Technology ( Production , Purification , and Application )
Hybridoma Technology  ( Production , Purification , and Application  ) Hybridoma Technology  ( Production , Purification , and Application  )
Hybridoma Technology ( Production , Purification , and Application )
 
Introduction to AI in Higher Education_draft.pptx
Introduction to AI in Higher Education_draft.pptxIntroduction to AI in Higher Education_draft.pptx
Introduction to AI in Higher Education_draft.pptx
 
Alper Gobel In Media Res Media Component
Alper Gobel In Media Res Media ComponentAlper Gobel In Media Res Media Component
Alper Gobel In Media Res Media Component
 
Código Creativo y Arte de Software | Unidad 1
Código Creativo y Arte de Software | Unidad 1Código Creativo y Arte de Software | Unidad 1
Código Creativo y Arte de Software | Unidad 1
 
Grant Readiness 101 TechSoup and Remy Consulting
Grant Readiness 101 TechSoup and Remy ConsultingGrant Readiness 101 TechSoup and Remy Consulting
Grant Readiness 101 TechSoup and Remy Consulting
 

Electricity Production by Microorganisms

  • 1. ISSN 2350-1049 International Journal of Recent Research in Interdisciplinary Sciences (IJRRIS) Vol. 3, Issue 4, pp: (10-14), Month: October - December 2016, Available at: www.paperpublications.org Page | 10 Paper Publications Electricity Production by Microorganisms Kaushiki.P.Pandey Bsc. Msc. Dept. of Microbiology, Birla College Arts, Science & commerce University of Mumbai, India Abstract: Microbial fuel cells (MFCs) are alternative source of producing electricity, yet not commercialized but they shows production of electricity. The power produce by this experiment is limited but can be consider for future aspect. This research carried out by various samples which show positive result. , its due to metabolic activity which carried out in the anaerobic condition MFCs production of electricity is indirectly proportional to time. This can be seen in all samples. The experiment is carried out by construction of two-chamber, in which transfer of energy was carried out. The power production of the main mechanism in this experiment was by direct transfer of electrons to the electrode by bacteria growing on the electrode cyclic voltammeter. The attachment of bacteria on electrode was studied. The most bacteria which were isolated from the sample were Klebsiella pneumonia, Escherichia coli, Pseudomonas aeruginosa. Keywords: Microbial fuel cell, power density, electric energy generation, Alternative energy, electron, proton. I. INTRODUCTION The forecast of the world’s population reveals that by 2050 it will reach 9.4 billion and therefore there is an urgent need to increase energy production by that time. In past centuries, fossil fuels have been a key factor for industrial and economic development.(Vizhemehr et al., 2012) A unique type of fuel cell holding a promise in the long term is the bio-fuel cell further work on cattle waste substrate for successful production of Bioelectricity by MFCs has been reported.(Tyagi et al., 2012).Alternative source of power generation can be biological method.[1] MFC is a device that converts chemical energy stored in the organic matter to electricity using microorganisms as the biocatalyst. The organic matter is oxidized with the help of microorganisms, producing energy, electrons and protons. The energy is stored by microorganisms and used for the growth. The electrons are brought to the anode from the inside of microorganisms by the mediator, and flow to the cathode through copper wire. The protons go through the proton exchange membrane (PEM) and enter the cathode chamber. They react with the oxygen and the electrons on the cathode, producing water. In this way, the organic matter is converted to electricity. (Zhen long Li et al., 2007). The use of microorganisms in fuel cell as a catalyst for electricity generation was known 40 years ago. When microorganisms consume a substrate such as sugar in aerobic conditions they produce carbon dioxide and water. However when oxygen is not present, they produce carbon dioxide, protons and electrons C12 H22 O11 + 13H2O ---> 12CO2 + 48H +48e- (Moawad.2013). Our aim to analysis the power generation by MFCs using the bacterial culture from the waste sample. The study including construct microbial fuel cells using various sample, to derive mathematical models to express voltage generated from the cells as a continuous function of time. Evaluate the rate of change of the generated voltage with respect to time extrapolate how long the microbial fuel cells stay functioning .Observation of a mixture of bio wastes does actually result in high voltage.[1]Microbes in the anodic chamber of an MFC oxidize added substrates and generate electrons and protons in the process. Carbon dioxide is produced as an oxidation product. However, there is no net carbon emission because the carbon dioxide in the renewable biomass originally comes from the atmosphere in the photosynthesis process. Unlike in a direct combustion process, the electrons are absorbed by the anode and are transported to the cathode through an external circuit. After crossing a PEM or a salt bridge, the protons enter the cathodic chamber where they combine
  • 2. ISSN 2350-1049 International Journal of Recent Research in Interdisciplinary Sciences (IJRRIS) Vol. 3, Issue 4, pp: (10-14), Month: October - December 2016, Available at: www.paperpublications.org Page | 11 Paper Publications with oxygen to form water. Microbes in the anodic chamber extract electrons and protons in the dissimilative process of oxidizing organic substrates (Rabaey and Verstraete, 2005) Fig. 1 shows a schematic diagram of a typical MFC for producing electricity. It consists of anodic and cathodic chambers partitioned by a proton exchange membrane (PEM) (Wilkinson, 2000; Gil et al., 2003). Fig. 1. Schematic diagram of a typical two-chamber microbial fuel cell II. METHOD & MATERIAL The sample collection were carried from different places sources each set of 5 like Drain water, Kitchen waste, Cow dung + slurry, Organic waste + slurry+vermicompos, Orange peels, fish. Construction of two-chambers and salt bridge were done. Incubation period of the sample was 5days, So that the metabolism of the bacteria takes place in anaerobic condition. A salt solution, NaCl1g was added to each of the bio waste samples to make the mixture electrically conductive. This mixture was placed in a sealed chamber to stop entering of oxygen, thus forcing the microorganism to use anaerobic respiration. An electrode which was placed in the solution was act as the anode. In the second chamber of the MFC was placed another sample solution and another electrode. This electrode, called the cathode was been positively charged and would be the equivalent of the oxygen sink at the end of the electron transport chain. Connected the two electrodes by a wire and completed the circuit and connected the two chambers by salt bridge. Preparation of salt bridges, a water solution contented concentrations of 3% NaCl and 1.6% agar was prepared to boil for nearly 3 minutes. The hot solution was poured into PVC pipe by sealing one end. The setup will thereafter allow cooling. The salt bridges were thus ready for use. To increase the overall stack voltage or current, the five individual MFCs (MFC 01–MFC 05) were respectively connect in series circuit. Variation in The voltage after stacking the MFCs in series circuit was being reported at regular time Intervals. After making MFCs incubation take place for 5days III. RESULT & DISCUSSION The voltage production was varying between the samples. Production of voltage increases by connecting in series. Electricity production was seen in 3phase Lag phase, stationary phase, and log phase. As the time was increases the nutrient value was decreasing from the sample due to utilization by the organism. In 2010, A. ter Heine et al. constructed a device capable of producing electricity and reducing Cu (II) (ion) to copper metal it was same result. We can say that energy is directly proportional to bacteria present in sample so that by use of biosensor we may able to increases the power generation. Kitchen waste gives significant result so we can say that organisms are getting high nutrition value from the sample.in mixture of cow dung and slurry, slurry contain high soil bacteria which are able to reproduce in anaerobic state so that it’s able to give significant power.
  • 3. ISSN 2350-1049 International Journal of Recent Research in Interdisciplinary Sciences (IJRRIS) Vol. 3, Issue 4, pp: (10-14), Month: October - December 2016, Available at: www.paperpublications.org Page | 12 Paper Publications TABLE I Qualitative analysis of samples for production of energy Sr. Sample Energy Productivity 1 Drain water + 2 Kitchen waste ++ 3 Cow dung + slurry ++ 4 slurry, Organic waste + slurry+vermicompos + 5 Orange peels + 6 Fish - Keys: + = Presence of electricity , - = Absence of electricity a. Graphs: Samples incubated for 5 days showed electricity generation and its voltage was measureed at different interval of time. Its graphical representation is presented in fig .2, fig .3 Fig 2: Electricity generated by kitchen waste sample Fig 3: Electricity generated by cow dung + slurry sample 0 0.5 1 1.5 2 2.5 3 3.5 4 0 50 100 150 200 Volt Time day1 day2 day3 day4 day5 Linear (day1) Linear (day2) Linear (day3) Linear (day4) Linear (day5) 0 0.5 1 1.5 2 2.5 3 3.5 4 0 50 100 150 200 Volt Time day1 day2 day3 day4 day5 Linear (day1) Linear (day2) Linear (day3) Linear (day4) Linear (day5)
  • 4. ISSN 2350-1049 International Journal of Recent Research in Interdisciplinary Sciences (IJRRIS) Vol. 3, Issue 4, pp: (10-14), Month: October - December 2016, Available at: www.paperpublications.org Page | 13 Paper Publications b. Conclusion acknowledgement: The authors would like express their appreciation for the partial financial support given for this research by Dept. of Microbiology Birla College. IV. CONCLUSION Electricity generation not seen in high protein contained sample like fish Sample. Significantly electricity generation was significantly on 1st day of sample voltage measurement. Electricity production was decreases as increase in day REFERENCES [1] K. Vizhemehr , H. R. Kariminia. and S. Yaghmaei (2012), Production Of Electricity Generation in a Duel Chamber Microbial Fuel Cell, Iranian Journal of Chemical Engineering ,Vol. 9, No. 1 [2] A. Tyagi, S. Dwivedi, S. Mishra and A. D. Srivastav (2012), Studies on the optimization of Bioelectricityproduction from industrial and domestic waste using immobilization of microbial cells ISABB, Journal of Biotechnology and Bioinformatics, Vol. 2(2), pp. (18 – 25). [3] Abhilasha Singh Mathuriya and V.N. Sharma.(2010)Treatment of Brewery Wastewater and Production of Electricity through Microbial Fuel CellTechnology. International Journal ofBiotechnology and Biochemistry ISSN0973-2691 Volume 6 Number 1, pp. (71–80). [4] AyhanDemibas. (2000)Biomass recourses facilities and biomass conversion processing for fuels and chemical. Energy conversion and management. Elsevier vol-42(1357-1378) [5] AyhanDemibas(2004) Combustion characteristics of different biomass fuels .Elsevier.Progress in Energy and Combustion Science vol-30 (219–230) [6] Ashley E. Franks and Kelly P. Nevins (2010) Microbial Fuel Cells, A Current Review Energies, vol-3, (899-919) [7] Abhilasha Singh Mathuriya and V.N. Sharma, Treatment of Brewery Wastewater and Production of Electricity through Microbial Fuel Cell Technology .International Journal of Biotechnology and Biochemistry ISSN 0973-2691 Volume 6 Number 1 (2010) pp. 71–80 [8] Andre Gruning, Nelli J Beecroft and Claudio Avignone-Rossa(2014)Metabolic composition of anode community predicts electrical power inmicrobial fuel cells.Biorxiv [9] Khazraei Vizhemehr, H. R. Kariminia, S. YaghmaeiAzadi Ave.(2012),Prediction of Electricity Generation in a Duel Chamber Microbial Fuel Cell Iranian Journal of Chemical Engineering Vol. 9, No. 1 (Winter), IAChE [10] B.K. Pandey, V. Mishra, S. Agrawal. (2011) Production of bio-electricity during wastewater treatment using a single chamber microbial fuel cell.International Journal of Engineering, Science and Technology Vol. 3, No. 4,2011, pp. (42-47) [11] Bhavik K. Acharya ,HilorPathak , SarayuMohana , YogeshShouche, Vasdev Singh ,DattaMadamwar. (2011) Kinetic modelling and microbialcommunity assessment of anaerobic biphasic fixed film bioreactor treatingdistillery spent wash.Elseviervol-45(4248-4259) [12] Bookimin and Brucee.Logan(2004) Continuous Electricity Generation from Domestic Wastewater and Organic Substrates in a Flat Plate Microbial Fuel cell Environ. Sci. Technol. Vol-38 (5809-5814) [13] Deepak Pant, Gilbert Van Bogaert, Ludo Diels, and Karolien Vanbroekhoven(2010) A review of the substrates used in microbialfuel cells (MFCs) for sustainable energy production. Elsevier, Bioresource Technology vol-101 (1533– 1543) [14] Derek R Lovely (2006) Microbial fuel cells: novel microbial physiologies and engineering approaches Elsevier Current Opinion in Biotechnology, vol-17(327–332)
  • 5. ISSN 2350-1049 International Journal of Recent Research in Interdisciplinary Sciences (IJRRIS) Vol. 3, Issue 4, pp: (10-14), Month: October - December 2016, Available at: www.paperpublications.org Page | 14 Paper Publications [15] Derek R Lovley(2008) The microbe electric: conversion of organic matter to electricity. Elsevier,Current Opinion in biotechnology, vol-19 (564–571) [16] Hefacheng, yanguozhang,aihongmeng,and Qinghai li (2007), Municipal Solid Waste FueledPower Generation in China: A CaseStudy of Waste-to-Energy inChangchun City Environ. Sci. Technol. Vol-41, (7509-7515) [17] Derek R. Lovely (2011) Powering microbes with electricity: direct electron transfer from electrodes to microbes Environmental Microbiology Reports3(1), (27–35) [18] Emad Y. Moawad (2013) Growth Energy of Bacteria and the Associated Electricity Generation in Fuel Cells.Elsevier, Bioengineering and Bioscience vol-1 (5-10) [19] Hong liu, Stephen grot, and Bruce .e. Logan (2005) Electrochemically Assisted Microbial Production of Hydrogen from AcetateEnviron. Sci. Technol,vol- 39, (4317-4320) [20] Hong liu, shaoancheng, and Bruce .e. Logan (2005) Production of Electricity from Acetate or Butyrate Using a Single-Chamber Microbial Fuel Cell Environ. Sci. Technol., Vol- 39, (658-662) [21] H.p.Bennetto (1990) electrical generation by microorganism Biotechnology education vol-1 (163-168) [22] Jun Liu ,TingGuo ,Dong Wang ,Hanjie Ying(2015) Clostridium beijerinckii mutant obtained atmospheric pressure glow discharge generates enhanced electricity in a microbial fuel cell,BiotechnologyLettvol-37(95–100) [23] Matteo Daghio, Isabella Gandolfi, Giuseppina Bestetti, Andrea Franzetti, Edoardo Guerrini and Pierangela Cristiani (2015) Anodic and cathodic microbial communities in single chamber microbial fuel cells .New Biotechnology Volume 32, Number 1 [24] Peter Weiland (2010) Biogas production: current state and perspectives Springer-Verlag, Appl Microbial Biotechnology Vol-85 (849–860) [25] R.A. Bullen, T.C. Arnot, J.B. Lakeman, F.C. Walsh (2006) Biofuel cells and their development Biosensors and Bioelectronics .Elsevier vol-21(2006) 2015–2045 [26] Steven K. Rose &ElmarKriegler&Ruben Bibas& Katherine Calvin &Alexander Popp &Detlef P. van Vuuren& John Weyant(2014) Bio energyin energy transformationand climate management Climatic Change vol-123(477–493) [27] Sung T. Oh, Jung Rae Kim, Giuliano. Premier , Tae Ho Lee , Changwon Kim ,William T. Sloan (2010)Sustainable wastewater treatment: How might microbial fuel cells contribute Biotechnology Advances vol- 28(871–881) [28] Vanita Roshan Nimje , Chien-Cheng Chen, Hau-Ren Chen, Chien-Yen Chen Min-Jen Tseng, Kai-Chien Cheng, Ruey-Chyuan Shih and Young-Fo Chang (2012) A Single-Chamber Microbial Fuel Cell without an Air Cathode Int. J. Mol. Sci.,vol-13,( 3933-3948) [29] Zhuwei Du, Haoran Li, Tingyue GU (2007) states of the art review on microbial fuel cells: A promising technology for wastewater treatment and bioenergy. Elsevier. Biotechnology Advances vol-25 (464–482)