102
9 Hydrogen Fuel Cells and Nanotechnology
3. Granovskii M, Dincer I, Rosen MA (2006) Economic and environmental comparison of conventional, hybrid, electric and hydrogen fuel cell vehicles. J Power Sources 159(2):1186–1193
4. Hsiung S (2001) Hydrogen fuel cell engines and related technologies
5. Spiegel C (2007) Designing and building fuel cells, vol 87. Citeseer
6. Haile SM (2003) Fuel cell materials and components. Acta Mater 51(19):5981–6000
7. Cassidy M, Ouweltjes JP, Dekker N (2010) Going beyond hydrogen: Non-hydrogen fuels,
re-oxidation and impurity effects on solid oxide fuel cell anodes. Rsc Energy Environ S:153–189
8. Paul DR, Robeson LM (2008) Polymer nanotechnology: nanocomposites. Polymer
49(15):3187–3204
9. Zäch M, Hägglund C, Chakarov D, Kasemo B (2006) Nanoscience and nanotechnology for
advanced energy systems. Curr Opin Solid State Mater Sci 10(3–4):132–143
10. Thiam HS, Daud WRW, Kamarudin SK, Mohammad AB, Kadhum AAH, Loh KS, Majlan EH
(2011) Overview on nanostructured membrane in fuel cell applications. Int J Hydrogen Energy
36(4):3187–3205. https://doi.org/10.1016/j.ijhydene.2010.11.062
11. Jiang SP (2012) Nanoscale and nano-structured electrodes of solid oxide fuel cells by
infiltration: advances and challenges. Int J Hydrogen Energy 37(1):449–470
12. Rajalakshmi N, Lakshmi N, Dhathathreyan KS (2008) Nano titanium oxide catalyst support
for proton exchange membrane fuel cells. Int J Hydrogen Energy 33(24):7521–7526
13. Tegart G (2009) Energy and nanotechnologies: Priority areas for Australia’s future. Technol
Forecast Soc Chang 76(9):1240–1246
14. Wannek C, Glüsen A, Stolten D (2010) Materials, manufacturing technology and costs of fuel
cell membranes. Desalination 250(3):1038–1041
15. Elfring GJ, Struchtrup H (2007) Thermodynamic considerations on the stability of water in
Nafion. J Membr Sci 297(1–2):190–198
16. Inaba M, Kinumoto T, Kiriake M, Umebayashi R, Tasaka A, Ogumi Z (2006) Gas crossover and
membrane degradation in polymer electrolyte fuel cells. Electrochim Acta 51(26):5746–5753
17. Mahreni A, Mohamad AB, Kadhum AAH, Daud WRW, Iyuke SE (2009) Nafion/silicon
oxide/phosphotungstic acid nanocomposite membrane with enhanced proton conductivity. J
Membr Sci 327(1):32–40. https://doi.org/10.1016/j.memsci.2008.10.048
18. Jalani NH, Dunn K, Datta R (2005) Synthesis and characterization of Nafion®-MO2 (M=Zr,
Si, Ti) nanocomposite membranes for higher temperature PEM fuel cells. Electrochim Acta
51(3):553–560. https://doi.org/10.1016/j.electacta.2005.05.016
19. Rodgers MP, Shi Z, Holdcroft S (2008) Transport properties of composite membranes
containing silicon dioxide and Nafion®. J Membr Sci 325(1):346–356. https://doi.org/10.1016/
j.memsci.2008.07.045
20. Liu J, Qu R, Peng P, Liu W, Chen D, Zhang H, Liu X (2016) Covalently functionalized
graphene oxide and quaternized polysulfone nanocomposite membranes for fuel cells. RSC
Adv 6(75):71305–71310. https://doi.org/10.1039/C6RA12822J
21. Özdemir Y, Üregen N, Devrim Y (2017) Polybenzimidazole based nanocomposite membranes
with enhanced proton conductivity for high temperature PEM fuel cells. Int J Hydrogen Energy
42(4):2648–2657. https://doi.org/10.1016/j.ijhydene.2016.04.132
22. Yokokawa H (2003) Understanding materials compatibility. Annu Rev Mater Res 33(1):581–
610
23. Joong Yoon K, Biswas M, Kim H-J, Park M, Hong J, Kim H, Son J-W, Lee J-H, Kim BK, Lee H-W (2017) Nano-tailoring of infiltrated catalysts for high-temperature solid oxide
regenerative fuel cells. Nano Energy 36:9–20. https://doi.org/10.1016/j.nanoen.2017.04.024
24. Gu Y, Zhang Y, Zheng Y, Chen H, Ge L, Guo L (2019) PrBaMn2O5+δ with praseodymium oxide
nano-catalyst as electrode for symmetrical solid oxide fuel cells. Appl Catal B 257:117868.
https://doi.org/10.1016/j.apcatb.2019.117868
25. Mohamed HO, Abdelkareem MA, Obaid M, Chae S-H, Park M, Kim HY, Barakat NAM
(2017) Cobalt oxides-sheathed cobalt nano flakes to improve surface properties of carbonaceous
electrodes utilized in microbial fuel cells. Chem Eng J 326:497–506. https://doi.org/10.1016/
j.cej.2017.05.166
9 Hydrogen Fuel Cells and Nanotechnology
3. Granovskii M, Dincer I, Rosen MA (2006) Economic and environmental comparison of conventional, hybrid, electric and hydrogen fuel cell vehicles. J Power Sources 159(2):1186–1193
4. Hsiung S (2001) Hydrogen fuel cell engines and related technologies
5. Spiegel C (2007) Designing and building fuel cells, vol 87. Citeseer
6. Haile SM (2003) Fuel cell materials and components. Acta Mater 51(19):5981–6000
7. Cassidy M, Ouweltjes JP, Dekker N (2010) Going beyond hydrogen: Non-hydrogen fuels,
re-oxidation and impurity effects on solid oxide fuel cell anodes. Rsc Energy Environ S:153–189
8. Paul DR, Robeson LM (2008) Polymer nanotechnology: nanocomposites. Polymer
49(15):3187–3204
9. Zäch M, Hägglund C, Chakarov D, Kasemo B (2006) Nanoscience and nanotechnology for
advanced energy systems. Curr Opin Solid State Mater Sci 10(3–4):132–143
10. Thiam HS, Daud WRW, Kamarudin SK, Mohammad AB, Kadhum AAH, Loh KS, Majlan EH
(2011) Overview on nanostructured membrane in fuel cell applications. Int J Hydrogen Energy
36(4):3187–3205. https://doi.org/10.1016/j.ijhydene.2010.11.062
11. Jiang SP (2012) Nanoscale and nano-structured electrodes of solid oxide fuel cells by
infiltration: advances and challenges. Int J Hydrogen Energy 37(1):449–470
12. Rajalakshmi N, Lakshmi N, Dhathathreyan KS (2008) Nano titanium oxide catalyst support
for proton exchange membrane fuel cells. Int J Hydrogen Energy 33(24):7521–7526
13. Tegart G (2009) Energy and nanotechnologies: Priority areas for Australia’s future. Technol
Forecast Soc Chang 76(9):1240–1246
14. Wannek C, Glüsen A, Stolten D (2010) Materials, manufacturing technology and costs of fuel
cell membranes. Desalination 250(3):1038–1041
15. Elfring GJ, Struchtrup H (2007) Thermodynamic considerations on the stability of water in
Nafion. J Membr Sci 297(1–2):190–198
16. Inaba M, Kinumoto T, Kiriake M, Umebayashi R, Tasaka A, Ogumi Z (2006) Gas crossover and
membrane degradation in polymer electrolyte fuel cells. Electrochim Acta 51(26):5746–5753
17. Mahreni A, Mohamad AB, Kadhum AAH, Daud WRW, Iyuke SE (2009) Nafion/silicon
oxide/phosphotungstic acid nanocomposite membrane with enhanced proton conductivity. J
Membr Sci 327(1):32–40. https://doi.org/10.1016/j.memsci.2008.10.048
18. Jalani NH, Dunn K, Datta R (2005) Synthesis and characterization of Nafion®-MO2 (M=Zr,
Si, Ti) nanocomposite membranes for higher temperature PEM fuel cells. Electrochim Acta
51(3):553–560. https://doi.org/10.1016/j.electacta.2005.05.016
19. Rodgers MP, Shi Z, Holdcroft S (2008) Transport properties of composite membranes
containing silicon dioxide and Nafion®. J Membr Sci 325(1):346–356. https://doi.org/10.1016/
j.memsci.2008.07.045
20. Liu J, Qu R, Peng P, Liu W, Chen D, Zhang H, Liu X (2016) Covalently functionalized
graphene oxide and quaternized polysulfone nanocomposite membranes for fuel cells. RSC
Adv 6(75):71305–71310. https://doi.org/10.1039/C6RA12822J
21. Özdemir Y, Üregen N, Devrim Y (2017) Polybenzimidazole based nanocomposite membranes
with enhanced proton conductivity for high temperature PEM fuel cells. Int J Hydrogen Energy
42(4):2648–2657. https://doi.org/10.1016/j.ijhydene.2016.04.132
22. Yokokawa H (2003) Understanding materials compatibility. Annu Rev Mater Res 33(1):581–
610
23. Joong Yoon K, Biswas M, Kim H-J, Park M, Hong J, Kim H, Son J-W, Lee J-H, Kim BK, Lee H-W (2017) Nano-tailoring of infiltrated catalysts for high-temperature solid oxide
regenerative fuel cells. Nano Energy 36:9–20. https://doi.org/10.1016/j.nanoen.2017.04.024
24. Gu Y, Zhang Y, Zheng Y, Chen H, Ge L, Guo L (2019) PrBaMn2O5+δ with praseodymium oxide
nano-catalyst as electrode for symmetrical solid oxide fuel cells. Appl Catal B 257:117868.
https://doi.org/10.1016/j.apcatb.2019.117868
25. Mohamed HO, Abdelkareem MA, Obaid M, Chae S-H, Park M, Kim HY, Barakat NAM
(2017) Cobalt oxides-sheathed cobalt nano flakes to improve surface properties of carbonaceous
electrodes utilized in microbial fuel cells. Chem Eng J 326:497–506. https://doi.org/10.1016/
j.cej.2017.05.166
