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1

Fuel cell efficiency. Hauppauge, N.Y: Nova Science Publishers, 2011.

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2

United States. Dept. of Energy. Office of Energy Efficiency and Renewable Energy. Hydrogen, Fuel Cells & Infrastructure Technologies Program. Fuel cells: Power for the 21st century. Washington, D.C: The Office, 2003.

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3

Koval, Julie. Developments in fuel cell technology. Lansing, Mich: Senate Fiscal Agency, 2003.

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4

Z, Ding, and United States. National Aeronautics and Space Administration., eds. Modeling of thermal performance of multiphase nuclear fuel cell under variable gravity conditions. [Washington, DC]: National Aeronautics and Space Administration, 1996.

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5

Z, Ding, and United States. National Aeronautics and Space Administration., eds. Modeling of thermal performance of multiphase nuclear fuel cell under variable gravity conditions. [Washington, DC]: National Aeronautics and Space Administration, 1996.

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6

commission, European. European hydrogen and fuel cell projects. Luxembourg: Office for Official Publications of the European Communities, 2004.

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7

PEM fuel cell diagnostic tools. Boca Raton, FL: Taylor & Francis/CRC Press, 2011.

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8

Logan, Bruce E. Microbial Fuel Cells. New York: John Wiley & Sons, Ltd., 2008.

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9

Development, United States Congress Senate Committee on Energy and Natural Resources Subcommittee on Energy Research and. Fuel cell research, development, and commercialization: Hearing before the Subcommittee on Energy Research and Development of the Committee on Energy and Natural Resources, United States Senate, Ninety-ninth Congress, second session, on S. 1686 ... S. 1687 ... February 24, 1986. Washington: U.S. G.P.O., 1986.

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10

United States. Congress. Senate. Committee on Energy and Natural Resources. Subcommittee on Energy Research and Development. Fuel cell research, development, and commercialization: Hearing before the Subcommittee on Energy Research and Development of the Committee on Energy and Natural Resources, United States Senate, Ninety-ninth Congress, second session, on S. 1686 ... S. 1687 ... February 24, 1986. Washington: U.S. G.P.O., 1986.

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11

United States. Congress. Senate. Committee on Energy and Natural Resources. Subcommittee on Energy Research and Development. Fuel cell research, development, and commercialization: Hearing before the Subcommittee on Energy Research and Development of the Committee on Energy and Natural Resources, United States Senate, Ninety-ninth Congress, second session, on S. 1686 ... S. 1687 ... February 24, 1986. Washington: U.S. G.P.O., 1986.

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12

V, Baglio, and Antonucci V, eds. Direct methanol fuel cells. Hauppauge, N.Y: Nova Science Publishers, 2009.

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13

Forum on New Materials (5th 2010 Montecatini Terme, Italy). New materials I: Advanced fossil fuel energy technologies, hydrogen production and storage, fuel cells, electrochemical energy storage systems : proceedings of the 5th Forum on New Materials, part of CIMTEC 2010, 12th International Ceramics Congress and 5th Forum on New Materials, Montecatini Terme, Italy, June 13-18, 2010. Stafa-Zurich, Switzerland: Trans Tech Publications on behalf of Techna Group, Faenza, Italy, 2011.

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14

L, Lens P. N., ed. Biofuels for fuel cells: Renewable energy from biomass fermentation. London: IWA Publishing, 2005.

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15

Identification of catalysts and materials for a high-energy density biochemical fuel cell: Cooperative research and development final report. [Golden, Colo.]: National Renewable Energy Laboratory, 2013.

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16

Hydrogen fuel cells: Independent power sources for the future. New York: Vantage Press, 2004.

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17

Bocarsly, Andrew. Fuel Cells and Hydrogen Storage. Berlin, Heidelberg: Springer-Verlag Berlin Heidelberg, 2011.

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18

United States. Congress. House. Committee on Science. Subcommittee on Energy. Fuel cells, the key to energy independence?: Field hearing before the Subcommittee on Energy, Committee on Science, House of Representatives, One Hundred Seventh Congress, second session, June 24, 2002. Washington: U.S. G.P.O., 2003.

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19

Inc, Xenergy, Energetic Management Associates, and Northeast Regional Biomass Program, eds. Toward a renewable power supply: The use of bio-based fuels in stationary fuel cells. Burlington, MA: Xenergy, 2002.

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20

Edinger, Raphael. Sustainable mobility: Renewable energies for powering fuel cell vehicles. Westport, Conn: Praeger, 2003.

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21

Shizhong, Chen, ed. Zhi zi jiao huan mo ran liao dian chi de shui guan li yan jiu. Beijing: Ke xue chu ban she, 2011.

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22

1936-, Matsuura Takeshi, and SpringerLink (Online service), eds. Polymer Membranes for Fuel Cells. Boston, MA: Springer-Verlag US, 2009.

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23

Minnesota. Business and Community Development Division. Developing the hydrogen economy in Minnesota: Creating jobs and economic development through Minnesota-based renewable hydrogen resources : a report to the State Legislature pursuant to Minn. Laws, Chapter 11, Article 2, Section 19. St. Paul, Minn: The Division, 2004.

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24

Kunusch, Cristian. Sliding-Mode Control of PEM Fuel Cells. London: Springer London, 2012.

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25

Milewski, Jarosław. Advanced methods of solid oxide fuel cell modeling. London: Springer Verlag, 2011.

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26

United States. Congress. Senate. Committee on Energy and Natural Resources. Subcommittee on Energy. Hydrogen and fuel cell research: Hearing before the Subcommittee on Energy of the Committee on Energy and Natural Resources, United States Senate, One Hundred Ninth Congress, first session, to receive testimony on recent progress in hydrogen and fuel cell research sponsored by the Department of Energy and by private industry, July 27, 2005. Washington: U.S. G.P.O., 2005.

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27

Advanced energy technology development in New Mexico: Hearing before the Committee on Energy and Natural Resource, United States Senate, One Hundred Seventh Congress, second session on advanced energy technology development in New Mexico, December 3, 2002, Albuquerque, NM. Washington: U.S. G.P.O., 2003.

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28

Establishment of a bioenergy focused microalgae strain collection using rappid high-throughput methodologies: Cooperative research and development final report. Golden, CO: National Renewable Energy Laboratory, 2013.

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29

Grech, Maria A. Hydrogen in the energy mix. Hauppauge, N.Y: Nova Science Publshers, 2011.

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30

Basualdo, Marta S., Rachid Outbib, and Diego Feroldi. PEM fuel cells with bio-fuel processor systems: A multidisciplinar study of modelling, simulation, fault diagnosis and advanced control. London: Springer, 2010.

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31

Resources, United States Congress Senate Committee on Energy and Natural. Renewable Energy/Fuel Cell Integration Act of 1989: Report (to accompany S. 633). [Washington, D.C.?: U.S. G.P.O., 1989.

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32

United States. Congress. Senate. Committee on Energy and Natural Resources. Renewable Energy/Fuel Cell Integration Act of 1989: Report (to accompany S. 633). [Washington, D.C.?: U.S. G.P.O., 1989.

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33

United States. Congress. Senate. Committee on Energy and Natural Resources. Renewable Energy/Fuel Cell Integration Act of 1989: Report (to accompany S. 633). [Washington, D.C.?: U.S. G.P.O., 1989.

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34

Center, NASA Glenn Research, ed. High energy density regenerative fuel cell systems for terrestrial applications. [Cleveland, Ohio]: National Aeronautics and Space Administration, Glenn Research Center, 1999.

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35

Resources, United States Congress Senate Committee on Energy and Natural. Renewable Energy/Fuel Cell Systems Integration Act of 1988: Report (to accompany S. 1294). [Washington, D.C.?: U.S. G.P.O., 1988.

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36

The Center for Smart Energy., ed. Poised for profit II: Prospects for the fuel cell sector in the Pacific Northwest. Ontario, Ca: The Athena Institute, 2004.

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37

United States. Congress. Senate. Committee on Energy and Natural Resources. Renewable Energy/Fuel Cell Systems Integration Act of 1988: Report (to accompany S. 1294). [Washington, D.C.?: U.S. G.P.O., 1988.

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38

United States. Congress. Senate. Committee on Energy and Natural Resources. Renewable Energy/Fuel Cell Systems Integration Act of 1988: Report (to accompany S. 1294). [Washington, D.C.?: U.S. G.P.O., 1988.

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39

Buckeridge, Marcos Silveira. Routes to cellulosic ethanol. New York, NY: Springer, 2011.

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40

Fuel cell yearbook. Lakewood, CO: Energy Info Source, Inc., 2003.

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41

Wolf, E. L. Solar Cell Physics and Technologies. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198769804.003.0010.

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Solar cells are based on semiconductor pn junctions. Absorption of sunlight is optimal at bandgap energies near one electron volt, and greatly increases the reverse current density. The efficiency of the cell is described by the “filling factor”, and is limited, for single junction cells, by the Quiesser–Shockley limit, near 30 percent. Tandem cells, series combinations of cells, absorb a larger portion of the solar spectrum with higher efficiency but with greater complexity and cost. Such cells are used with focusing optics that inherently raises the efficiency, but also the complexity and cost. This is a textbook for physics, chemistry and engineering students interested in the future of energy as impacted by depletion of fossil fuels, and in the effects of fossil fuel burning on climate.
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42

Sarkar, B. K., and Reena Singh. Hydrogen Fuel Cell Vehicles Current Status. Namya Press, 2022. http://dx.doi.org/10.56962/9789355451118.

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Abstract: The hazardous effects of pollutants from conventional fuel vehicles have caused the scientific world to move towards environmentally friendly energy sources. Though we have various renewable energy sources, the perfect one to use as an energy source for vehicles is hydrogen. Like electricity, hydrogen is an energy carrier that has the ability to deliver incredible amounts of energy. On-board hydrogen storage in vehicles is an important factor that should be considered when designing fuel cell vehicles. In this study, a recent development in hydrogen fuel cell engines is reviewed to scrutinize the feasibility of using hydrogen as a major fuel in transportation systems. A fuel cell is an electrochemical device that can produce electricity by allowing chemical gases and oxidants as reactants. With anodes and electrolytes, the fuel cell splits the cation and the anion in the reactant to produce electricity. Fuel cells use reactants, which are not harmful to the environment and produce water as a product of the chemical reaction. As hydrogen is one of the most efficient energy carriers, the fuel cell can produce direct current (DC) power to run the electric car. By integrating a hydrogen fuel cell with batteries and the control system with strategies, one can produce a sustainable hybrid car.
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43

Drillet, Jean-Francois, Yanhai Du, and Stanislav Kolisnychenko. Fuel Cells. Trans Tech Publications, Limited, 2020.

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44

Fuel Cells. Trans Tech Publications, Limited, 2020.

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45

Sivasankar, Venkataraman, Prabhakaran Mylsamy, and Kiyoshi Omine. Microbial Fuel Cell Technology for Bioelectricity. Springer, 2018.

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46

Sivasankar, Venkataraman, Prabhakaran Mylsamy, and Kiyoshi Omine. Microbial Fuel Cell Technology for Bioelectricity. Springer, 2019.

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47

Fuel cell economic development plan.: Hydrogen roadmap. East Hartford, CT: Connecticut Center for Advanced Technology, 2007.

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48

Fuel cell economic development plan.: Hydrogen roadmap. East Hartford, CT: Connecticut Center for Advanced Technology, 2007.

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49

Fuel cell power plant initiative: Final report. [Washington, DC: National Aeronautics and Space Administration, 1997.

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50

Sustainable Mobility: Renewable Energies for Powering Fuel Cell Vehicles. Praeger Publishers, 2003.

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