134
Electrochemical Supercapacitors for Energy Storage and Delivery
39. Raymundo-Piñero, E., F. Leroux, and F. Béguin. 2006. A high-performance carbon for supercapacitors obtained by carbonization of a seaweed biopolymer.
Advanced Materials, 18, 1877–1882.
40. Montes-Morán, M. A. et al. 2004. On the nature of basic sites on carbon surfaces:
an overview. Carbon, 42, 1219–1225.
41. Raymundo-Piñero, E., M. Cadek, and F. Béguin. 2009. Tuning carbon materials for supercapacitors by direct pyrolysis of seaweeds. Advanced Functional
Materials, 19, 1032–1039.
42. Shin, H. J. et al. 2009. Efficient reduction of graphite oxide by sodium borohydride and its effect on electrical conductance. Advanced Functional Materials, 19,
1987–1992.
43. Yu, G. et al. 2011. Solution-processed graphene–MnO 2 nanostructured textiles
for high-performance electrochemical capacitors. Nanoletters, 11, 2905–2911.
44. Frackowiak, E. et al. 2006. Supercapacitors based on conducting polymer–nanotube composites. Journal of Power Sources, 153, 413–418.
45. Khomenko, V., E. Raymundo-Piñero, and F. Béguin. 2008. High-energy density graphite–AC capacitor in organic electrolyte. Journal of Power Sources, 177,
643–651.
46. Stoller, M. D. et al. 2012. Activated graphene as a cathode material for Li ion
hybrid supercapacitors. Physical Chemistry/Chemical Physics, 14, 3388–3391.
47. Brousse, T. et al. 2007. Long-term cycling behavior of asymmetric activated carbon/MnO 2 aqueous electrochemical supercapacitor. Journal of Power Sources,
173, 633–641.
48. Khomenko, V., E. Raymundo-Piñero, and F. Béguin. 2010. A new type of high
energy asymmetric capacitor with nanoporous carbon electrodes in aqueous
electrolyte. Journal of Power Sources, 195, 4234–4241.
Electrochemical Supercapacitors for Energy Storage and Delivery
39. Raymundo-Piñero, E., F. Leroux, and F. Béguin. 2006. A high-performance carbon for supercapacitors obtained by carbonization of a seaweed biopolymer.
Advanced Materials, 18, 1877–1882.
40. Montes-Morán, M. A. et al. 2004. On the nature of basic sites on carbon surfaces:
an overview. Carbon, 42, 1219–1225.
41. Raymundo-Piñero, E., M. Cadek, and F. Béguin. 2009. Tuning carbon materials for supercapacitors by direct pyrolysis of seaweeds. Advanced Functional
Materials, 19, 1032–1039.
42. Shin, H. J. et al. 2009. Efficient reduction of graphite oxide by sodium borohydride and its effect on electrical conductance. Advanced Functional Materials, 19,
1987–1992.
43. Yu, G. et al. 2011. Solution-processed graphene–MnO 2 nanostructured textiles
for high-performance electrochemical capacitors. Nanoletters, 11, 2905–2911.
44. Frackowiak, E. et al. 2006. Supercapacitors based on conducting polymer–nanotube composites. Journal of Power Sources, 153, 413–418.
45. Khomenko, V., E. Raymundo-Piñero, and F. Béguin. 2008. High-energy density graphite–AC capacitor in organic electrolyte. Journal of Power Sources, 177,
643–651.
46. Stoller, M. D. et al. 2012. Activated graphene as a cathode material for Li ion
hybrid supercapacitors. Physical Chemistry/Chemical Physics, 14, 3388–3391.
47. Brousse, T. et al. 2007. Long-term cycling behavior of asymmetric activated carbon/MnO 2 aqueous electrochemical supercapacitor. Journal of Power Sources,
173, 633–641.
48. Khomenko, V., E. Raymundo-Piñero, and F. Béguin. 2010. A new type of high
energy asymmetric capacitor with nanoporous carbon electrodes in aqueous
electrolyte. Journal of Power Sources, 195, 4234–4241.
