Have a personal or library account? Click to login
Storage of Hydrogen in Activated Carbons and Carbon Nanotubes Cover

Storage of Hydrogen in Activated Carbons and Carbon Nanotubes

Open Access
|Jan 2019

References

  1. 1. Barbir F., Hydrogen. International association for hydrogen energy. www.ihae.org. (2015).
  2. 2. Mormillan M., Veziroglu T.N., Current status of hydrogen energy. 6 (2002) 141-179.
  3. 3. Ramage J., Energy: A Guidebook. 1st ed. New York: Oxford University Press, 1983
  4. 4. Bouza A., Petrovic J., Read C., Satyapal S., Milliken J., The national hydrogen storage project. ACS Division of Fuel Chemistry. 49 2 (2004) 839.
  5. 5. Yang J., Sudik A., Wolverton C., Siegel D.J., High capacity hydrogen storage materials: attributes for automotive applications and techniques for materials discovery. Chemical Society Reviews. 39 (2010) 656-675.
  6. 6. Strobel R., Garche J., Moseley P.T., Jorissen L., Wolf G., Hydrogen storage by carbon materials. Journal of Power Sources. 159 (2006) 781-801.
  7. 7. Iijima S., Helical microtubules of graphitic carbon. Nature. 354 6348 (1991) 56-58.
  8. 8. Oyetade O.A., Nyamori V.O., Martincigh B.S., Jonnalagadda S.B., Effectiveness of carbon nanotube–cobalt ferrite nanocomposites for the adsorption of rhodamine B from aqueous solutions. RSC Advances. 5 (2015) 22724–22739.
  9. 9. Ombaka L.M., Ndungu P.G., Nyamori V.O., Pyrrolic nitrogen-doped carbon nanotubes: physicochemical properties, interactions with Pd and their role in the selective hydrogenation of nitrobenzophenone. RSC Advances. 5 (2014) 109–122.
  10. 10. Zabet M., Moradian S., Ranjbar Z., Zanganeh., Effect of carbon nanotubes on electrical and mechanical properties of multiwalled carbon nanotubes/epoxy coatings. J. Coat. Technol. Res. 13 1 (2016) 191–200.
  11. 11. Thakare J.G., Pandey C., Mulik R.S., Mahapatra M.M., Mechanical property evaluation of carbon nanotubes reinforced plasma sprayed YSZ-alumina composite coating. Ceramics International. 44 (2018) 6980–6989.
  12. 12. Esawi A.M.K., Morsi K., Sayed A., Taher M., Lanka S., Effect of carbon nanotube (CNT) content on the mechanical properties of CNT-reinforced aluminium composites. Composites Science and Technology. 70 (2010) 2237–2241.
  13. 13. Dillon A.C., Jones K.M., Bekkedahl T.A., Kiang C.H., Bethune D.S., Heben M.J., Storage of hydrogen in single-walled carbon nanotubes. Nature. 386 (1997) 377-8.
  14. 14. Dillon A.C., Gennet T., Alleman J.L., Jones K.M., Parilla P.A., Heben M.J., Carbon nanotube materials for hydrogen storage. Proceedings of the 2000 U.S. DOE Hydrogen Program Review. 2 (2000) 421-440.
  15. 15. Darkrim F.L., Malbrunot P., Tartaglia G.P., Review of hydrogen storage by adsroption in carbon nanotubes. International Journal of Hydrogen Energy. 27 2 (2002) 193-202.
  16. 16. Kaushik B.K., Majumder M.K., Carbon nanotube based VLSI interconnects. Springer Briefs in Applied Sciences and Technology. DOI 10.1007/978-81-322-2047-3_1, 17-37.
  17. 17. Chambers A., Park C., Baker R.T.K., Rodriguez N.M., Hydrogen storage in graphite nanofibers. The Journal of Physical Chemistry B. 102 22 (1998) 4253-4256.
  18. 18. Nishimiya N., Ishigaki K., Takikawa H., Ikeda M., Hibi Y., Sakakibara T., Matsumoto A., Tsutsumi K., Hydrogen sorption by single-walled carbon nanotubes prepared by a torch arc method. Journal of Alloys and Compounds. 339 (2002) 275-282.
  19. 19. Smith M.R., Bittner E.W., Shi W., Johnson J.K., Bockrath B.C., Chemical activation of single-walled carbon nanotubes for hydrogen adsorption. The Journal of Physical Chemistry B. 107 16 (2003) 3752-3760.
  20. 20. Silambasaran D., Surya V.J., Vasu V., Iyakutti K., Experimental investigation of hydrogen storage in single walled carbon nanotubes functionalized with borane. International Journal of Hydrogen Energy. 36 (2011) 3574-9.
  21. 21. Rashidi A.M., Nouralishahi A., Khodadadi A.A., Mortazavi Y., Karimi A., Kashefi K., Modification of single wall carbon nanotubes (SWNT) for hydrogen storage. International of Hydrogen Energy. 35 (2010) 9489-9495.
  22. 22. Mosquera E., Diaz-Droguett D.E., Carvajal N., Roble M., Morel M., Espinoza R., Characterization and hydrogen storage in multi-walled carbon nanotubes grown by aerosol-assisted CVD method. Diamond and Related Materials. 43 (2014) 66-71.
  23. 23. Lee S., Park S., Influence of the pore size in multi-walled carbon nanotubes on the hydrogen storage behaviors. Journal of Solid State Chemistry. 194 (2012) 307-312.
  24. 24. Barghi S.H., Tsotsis T.T., Sahimi M., Chemisorption, physisorption and hysteresis during hydrogen storage in carbon nanotubes. International Journal of Hydrogen Energy. 39 (2014) 1390-1397.
  25. 25. Lin K., Mai Y., Li S., Shu C., Wang C., Characterization and hydrogen storage of surface-modified multiwalled carbon nanotubes for fuel cell application. Journal of Nanomaterials. 939683 (2012) 1-12.
  26. 26. Rakhia R.B., Sethupathib K., Ramaprabhua S., Synthesis and hydrogen storage properties of carbon nanotubes. International Journal of Hydrogen Energy. 33 (2008) 381-386.
  27. 27. Karatepe N., Özyuğuran A., Yavuz R., Karbon yapılı malzemelerin hidrojen depolanmasında kullanımı. Dünya Enerji Konseyi Türk Milli Komitesi Türkiye 10. Enerji Kongresi. (2006) 407-416.
  28. 28. Kidnay A.J., Hiza M.J., High pressure adsorption isotherms of neon, hydrogen, and helium at 76°. Advances in Cryogenic Engineering. 12 (1966) 730-740.
  29. 29. Jimenez V., Sanchez P., Diaz J.A., Valverde J.L., Romero A., Hydrogen storage capacity on different carbon materials. Chemical Physics Letters. 485 (2010) 152-155.
  30. 30. Jorda-Beneyto M., Suarez-Garcia F., Lozano-Castello D., Cazorla-Amoros D., Linares-Solano A., Hyrogen storage on chemically activated carbons and carbon nanomaterials at high pressures. Carbon. 45 2 (2007) 293-303.
  31. 31. Akasaka H., Takahata T., Toda I., Ono H., Ohshio S., Himeno S., Kokubu T., Saitoh, H., Hydrogen storage ability of porous carbon material fabricated from coffee bean wastes. International Journal of Hydrogen Energy. 36 1 (2011) 580-585.
  32. 32. Chang Y.M., Tsai W.N., Li M.H., Characterization of activated carbon prepared from chlorella-based algal residue. Bioresource Technology. 184 (2015) 344–348.
  33. 33. Tekin N., Kara A., Beyaz S.K., Şimşek E., Çakmak G., Güney H.Y., Lamari F.D., Solubility and electrical properties of multiwalled carbon nanotubes/poly(1-vinyl-1-2-4-triazole) composite via in situ functionalization. Polymer-Plastics Technology and Engineering. 53 (2014) 1-11.
  34. 34. Atkinson K., Roth S., Hirscher M., Grünwald W., Carbon nanostructures: An efficient hydrogen storage medium for fuel cells. Fuel Cells Bulletin. 4 38 (2001) 9-12.
  35. 35. Hirscher M., Becher M., Haluska M., Quintel A., Skakalova V., Choi Y.M., Dettlaff-Weglikowska U., Roth S., Stepanek I., Bernier P., Leonhardt A., Fink J., Hydrogen storage in carbon nanostructures. Journal of Alloys and Compounds. (2002) 330-332, 654-658.10.1016/S0925-8388(01)01643-7
DOI: https://doi.org/10.1515/adms-2017-0045 | Journal eISSN: 2083-4799 | Journal ISSN: 1730-2439
Language: English
Page range: 5 - 16
Published on: Jan 3, 2019
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2019 E. E. Doğan, P. Tokcan, B. K. Kizilduman, published by Gdansk University of Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.