Improved Open Circuit Voltage in Nano-Porous Silicon Based Hydrogen Fuel Cell

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Hydrogen fuel cell generates electrical energy from the electrochemical reaction of hydrogen and oxygen with water vapor as a by-product. Polymer Exchange Membrane Fuel Cell (PEMFC) and Direct Methanol Fuel Cell (DMFC) which are normally utilized for portable applications are not only costly due to platinum electrodes, polymer membrane and supply of hydrogen or methanol as a fuel but also not integrable with silicon fabrication technology. Novel fuel cell based on nanoporous silicon (PS) as Metal/nanoPS/silicon Schottky type structure is under development and Open Circuit Voltage (Voc) upto 550 mV with Au as anode catalyst has been reported. Such fuel cell uses nanoporous silicon layer as proton exchange membrane. This type of structure is found to show humidity-voltaic effect i.e. generation of voltage in humid ambient. Humidity-stimulated voltage generation is facilitated by the hydrogen component of water present in the atmosphere. In the present work, our main objective was to improve Voc. We achieved Voc upto 1.118 V by restricting the pore size of nanoporous silicon to 4-5 nm and thickness of the Cu film to 100 nm. These results suggest that this type of fuel cell could be utilized to develop self-powered integrated circuit.

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Nano Hybrids (Volume 5)

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55-64

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October 2013

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[1] K. Kuang, K. Easler, Chapter 8. Constraint of PEM Micro Fuel Cells for Portable Electronics, Fuel Cell Electronics Packaging 2007, 145-163.

DOI: 10.1007/978-0-387-47324-6_8

Google Scholar

[2] N. Gyoko, I. Naohiro, Porous Silicon as a Proton Exchange Membrane for Micro Fuel Cells. Electrochemistry 73 (2005) 939-943.

Google Scholar

[3] R. Herino, G. Bomchil, K. Barla, C. Bertrand, J.L. Ginoux, Pore Size Distribution in Porous Silicon, J. Electrochem. Soc. 134 (1987) 1994-2000.

DOI: 10.1149/1.2100805

Google Scholar

[4] O. Bisi, S. Ossicini, L. Pavesi, Surf. Sci. Rep. 38 (2000) 1-129.

Google Scholar

[5] M. Li, M. Hu, D. Jia, S. Ma, W. Yan, NO2-sensing properties based on the nanocomposite of n-WO3-x/n- porous silicon at room temperature, Sens. Actuators, B 186 (2013) 140-147.

DOI: 10.1016/j.snb.2013.05.084

Google Scholar

[6] T.D. Dzhafarov, S. Aydin Yuksel, Silicon-based Direct Hydrogen Sulphide Fuel Cells, J. Nanosci. Nanotechnol. 11 (2011) 843-848.

DOI: 10.1166/jnn.2011.3456

Google Scholar

[7] K. Chu, M.A. Shanon, R.I. Masel, Porous Silicon Fuel Cell for Micro Power Generation, J. Micromech. Microeng. 17 (2007) S243-S247.

DOI: 10.1088/0960-1317/17/9/s06

Google Scholar

[8] S. Aravamudhan, A. Rahman, S. Bhansali, Porous Silicon Based Orientation Independent Self-priming Micro Direct Ethanol Fuel Cell, Sens. Actuators, A 123-124 (2005) 497-499.

DOI: 10.1016/j.sna.2005.03.069

Google Scholar

[9] T. Pichonat, B. Gauthier-Manuel, Realization of porous silicon based miniature fuel cells, J. Power Sources 154 (2006) 198-201.

DOI: 10.1016/j.jpowsour.2005.03.215

Google Scholar

[10] T.D. Dzhafarov, B. Can Omur, C. Oruc, Z.A. Allahverdiev, Hydrogen-sensing Characteristics of Cu-PS-Si Structures, J. Phys. D: Appl. Phys. 35 (2002) 3122-3126.

DOI: 10.1088/0022-3727/35/23/313

Google Scholar

[11] T.D. Dzhafarov, S. Aydin Yuksel, Nanoporous silicon-based direct hydrochloric acid fuel cells, Journal of Technology Innovations in Renewable Energy 2 (2013) 115-118.

DOI: 10.6000/1929-6002.2013.02.02.3

Google Scholar

[12] L.T. Canham, Silicon quantum wire array fabrication by electrochemical and chemical dissolution of wafers, Appl. Phys. Lett. 57 (1990) 1046.

DOI: 10.1063/1.103561

Google Scholar

[13] F.J Arregui, Y. Liu, I.R. Matias, R.O. Claus, Optical fiber humidity sensor using a nano Fabry–Perot cavity formed by the ionic self-assembly method, Sens. Actuators, B 59 (1999) 54-59.

DOI: 10.1016/s0925-4005(99)00232-4

Google Scholar

[14] J. Larmanie, A. Dicks, Fuel Cell Systems Explained, second ed., John Wiley & Sons, (2000)

Google Scholar