08.09.2014 Views

Controlled hydrogen generation by reaction of aluminum/sodium ...

Controlled hydrogen generation by reaction of aluminum/sodium ...

Controlled hydrogen generation by reaction of aluminum/sodium ...

SHOW MORE
SHOW LESS

Create successful ePaper yourself

Turn your PDF publications into a flip-book with our unique Google optimized e-Paper software.

5816<br />

international journal <strong>of</strong> <strong>hydrogen</strong> energy 37 (2012) 5811e5816<br />

references<br />

[1] Weidenthaler C, Felderh<strong>of</strong>f M. Solid-state <strong>hydrogen</strong> storage<br />

for mobile applications: quo vadis? Energy Environ Sci 2011;<br />

4:2495e502.<br />

[2] Wang P, Kang XD. Hydrogen-rich boron-containing materials<br />

for <strong>hydrogen</strong> storage. Dalton Trans 2008;40:5400e13.<br />

[3] Demirci UB, Miele P. Sodium borohydride versus ammonia<br />

borane, in <strong>hydrogen</strong> storage and direct fuel cell applications.<br />

Energy Environ Sci 2009;2:627e37.<br />

[4] Jiang HL, Singh SK, Yan JM, Zhang XB, Xu Q. Liquid-phase<br />

chemical <strong>hydrogen</strong> storage: catalytic <strong>hydrogen</strong> <strong>generation</strong><br />

under ambient conditions. Chem Sus Chem 2010;3:541e9.<br />

[5] Liang Y, Wang P, Dai H. Hydrogen <strong>generation</strong> from catalytic<br />

hydrolysis <strong>of</strong> <strong>sodium</strong> borohydride solution. Prog Chem 2009;<br />

21:2219e28.<br />

[6] Liu BH, Li ZP. A review: <strong>hydrogen</strong> <strong>generation</strong> from<br />

borohydride hydrolysis <strong>reaction</strong>. J Power Sources 2009;187:<br />

527e34.<br />

[7] Wang HZ, Leung DYC, Leung MKH, Ni M. A review on<br />

<strong>hydrogen</strong> production using <strong>aluminum</strong> and <strong>aluminum</strong> alloys.<br />

Renew Sust Energy Rev 2009;13:845e53.<br />

[8] Shkolnikov EI, Zhuk AZ, Vlaskin MS. Aluminum as energy<br />

carrier: feasibility analysis and current technologies<br />

overview. Renew Sust Energy Rev 2011;15:4611e23.<br />

[9] Petrovic J, Thomas G. Reaction <strong>of</strong> <strong>aluminum</strong> with water to<br />

produce <strong>hydrogen</strong>. A study <strong>of</strong> issues related to the use <strong>of</strong><br />

<strong>aluminum</strong> for on-board vehicular <strong>hydrogen</strong> storage. Version<br />

1.0. U. S. Department <strong>of</strong> Energy Report; 2008. Available at:<br />

http://www1.eere.energy.gov/<strong>hydrogen</strong>andfuelcells/pdfs/<br />

aluminium_water_ <strong>hydrogen</strong>.pdf.<br />

[10] Belitskus D. Reaction <strong>of</strong> <strong>aluminum</strong> with <strong>sodium</strong> hydroxide<br />

solution as a source <strong>of</strong> <strong>hydrogen</strong>. J Electrochem Soc 1970;117:<br />

1097e9.<br />

[11] Jung CR, Kundu A, Ku B, Gil JH, Lee HR, Jang JH. Hydrogen<br />

from aluminium in a flow reactor for fuel cell applications. J<br />

Power Sources 2008;175:490e4.<br />

[12] Deng ZY, Tang YB, Zhu LL, Sakka Y, Ye J. Effect <strong>of</strong> different<br />

modification agents on <strong>hydrogen</strong>-<strong>generation</strong> <strong>by</strong> the <strong>reaction</strong><br />

<strong>of</strong> Al with water. Int J Hydrogen Energ 2010;35:9561e8.<br />

[13] Dupiano P, Stamatis D, Dreizin EL. Hydrogen production <strong>by</strong><br />

reacting water with mechanically milled composite <strong>aluminum</strong>metal<br />

oxide powders. Int J Hydrogen Energ 2011;36:4781e91.<br />

[14] Skrovan J, Alfantazi A, Troczynski T. Enhancing <strong>aluminum</strong><br />

corrosion in water. J Appl Electrochem 2009;39:1695e702.<br />

[15] Soler L, Candela AM, Macanás J, Muñoz M, Casado J.<br />

Hydrogen <strong>generation</strong> from water and <strong>aluminum</strong> promoted<br />

<strong>by</strong> <strong>sodium</strong> stannate. Int J Hydrogen Energ 2010;35:1038e48.<br />

[16] Wang W, Chen DM, Yang K. Investigation on microstructure<br />

and <strong>hydrogen</strong> <strong>generation</strong> performance <strong>of</strong> Al-rich alloys. Int J<br />

Hydrogen Energ 2010;35:12011e9.<br />

[17] Ziebarth JT, Woodall JM, Kramer RA, Choi G. Liquid phaseenabled<br />

<strong>reaction</strong> <strong>of</strong> AleGa and AleGaeIneSn alloys with<br />

water. Int J Hydrogen Energ 2011;36:5271e9.<br />

[18] Fan MQ, Xu F, Sun LX. Hydrogen <strong>generation</strong> <strong>by</strong> hydrolysis<br />

<strong>reaction</strong> <strong>of</strong> ball-milled AleBi alloys. Energy Fuels 2007;21:<br />

2294e8.<br />

[19] Ilyukhina AV, Kravchenko OV, Bulychev BM, Shkolnikov EI.<br />

Mechanochemical activation <strong>of</strong> <strong>aluminum</strong> with gallams for<br />

<strong>hydrogen</strong> evolution from water. Int J Hydrogen Energ 2010;<br />

35:1905e10.<br />

[20] Dai HB, Ma GL, Xia HJ, Wang P. Reaction <strong>of</strong> aluminium with<br />

alkaline <strong>sodium</strong> stannate solution as a controlled source <strong>of</strong><br />

<strong>hydrogen</strong>. Energy Environ Sci 2011;4:2206e12.<br />

[21] Dai HB, Ma GL, Xia HJ, Wang P. Combined usage <strong>of</strong> <strong>sodium</strong><br />

borohydride and <strong>aluminum</strong> powder for high-performance<br />

<strong>hydrogen</strong> <strong>generation</strong>. Fuel Cells 2011;11:424e30.<br />

[22] Pyun SI, Moon SM. Corrosion mechanism <strong>of</strong> pure aluminium in<br />

aqueous alkaline solution. J Solid State Electr 2000;4:267e72.

Hooray! Your file is uploaded and ready to be published.

Saved successfully!

Ooh no, something went wrong!