195
Components and Materials for Electrochemical Supercapacitors
11. Chmiola, J. et al. 2008. Desolvation of ions in subnanometer pores and its effect
on capacitance and double-layer theory. Angewandte Chemie, 47, 3392–3395.
12. Chmiola, J. et al. 2006. Anomalous increase in carbon capacitance at pore sizes
less than 1 nanometer. Science, 313, 1760–1763.
13. Largeot, C. et al. 2008. Relation between the ion size and pore size for an electric
double-layer capacitor. Journal of the American Chemical Society, 130, 2730–2731.
14. Huang, J. B. Sumpter, and V. Meunier. 2008. Universal model for nanoporous
carbon supercapacitors applicable to diverse pore regimes, carbons, and electrolytes. European Journal of Chemistry, 14, 6614–6626.
15. Huang, J. B. Sumpter, and V. Meunier. 2008. Theoretical model for nanoporous
carbon supercapacitors. Angewandte Chemie, 47, 520–524.
16. Feng, G. et al. 2010. Atomistic insight on the charging energetics in subnanometer pore supercapacitors. Society, 114, 18012–18016.
17. Liu, C. et al. 2010. Advanced materials for energy storage. Advanced Materials,
22, E28–E62.
18. Geng, D. et al. 2011. Nitrogen doping effects on the structure of graphene.
Applied Surface Science, 257, 9193–9198.
19. Zhao, L. et al. 2010. Nitrogen-containing hydrothermal carbons with superior
performance in supercapacitors. Advanced Materials, 22, 5202–5206.
20. Lin, Z. et al. 2011. Surface engineering of graphene for high performance supercapacitors. Synthesis, 236–241.
21. Jeong, H. M. et al.2011. Nitrogen-doped graphene for high performance ultracapacitors and the importance of nitrogen-doped sites at basal planes. Nanoletters,
11, 2472–2477.
22. Algharaibeh, Z. and P. G. Pickup, 2011. An asymmetric supercapacitor with
anthraquinone and dihydroxybenzene modified carbon fabric electrodes.
Electrochemistry Communications, 13, 147–149.
23. Pognon, G. et al. 2011. Performance and stability of electrochemical capacitor
based on anthraquinone modified activated carbon. Journal of Power Sources,
196, 4117–4122.
24. Pognon, G. T. Brousse, and D. Bélanger. 2011. Effect of molecular grafting on the
pore size distribution and the double-layer capacitance of activated carbon for
electrochemical double-layer capacitors. Carbon, 49, 1340–1348.
25. Conway, B. E. 1999. Electrochemical Supercapacitors, New York: Plenum.
26. Gryglewicz, G. et al. 2005. Effect of pore size distribution of coal-based activated
carbons on double-layer capacitance. Electrochimica Acta, 50, 1197–1206.
27. Smith, P. and T. Jiang. 2009. High Energy Density Ultracapacitors. NAVSEACaderock Division. http://www1.eere.energy.gov/vehiclesandfuels/pdfs/
merit_review_2009/energy_storage/esp_22_smith.pdf
28. Frackowiak, E. 2007. Carbon materials for supercapacitor application. Physical
Chemistry–Chemical Physics, 9, 1774–1785.
29. Wu, F. C. et al. 2004. Physical and electrochemical characterization of activated
carbons prepared from fir woods for supercapacitors. Journal of Power Sources,
138, 351–359.
30. Wang, X. and D. Wang. 2003. Performance of electric double-layer capacitors
using active carbons prepared from petroleum coke by KOH and vapor re-etching. Journal of Materials Science and Technology, 19.
Précédent

- 214/382

Suivant