196
Electrochemical Supercapacitors for Energy Storage and Delivery
31. Obreja, V. 2008. On the performance of supercapacitors with electrodes based
on carbon nanotubes and carbon activated material: A review. Physica E, 40,
2596–2605.
32. Otowa, T. R. Tanibata, and M. Itoh. 1993. Production and adsorption characteristics of Maxsorb, a high surface area active carbon. Gas Separation and Purification,
7, 241–245.
33. Wen, Z. et al. 2009. An activated carbon with high capacitance from carbonization of a resorcinol–formaldehyde resin. Electrochemistry Communications, 11,
715–718.
34. Ania, C. O. et al. 2007. The large electrochemical capacitance of microporous doped carbon obtained by using a zeolite template. Advanced Functional
Materials, 17, 1828–1836.
35. Fuertes, A. et al. 2005. Templated mesoporous carbons for supercapacitor application. Electrochimica Acta, 50, 2799–2805.
36. Zhang, L. L. and X. S. Zhao. 2009. Carbon-based materials as supercapacitor
electrodes. Chemical Society Reviews, 38, 2520–2531.
37. Wang, H. et al. 2009. High performance of nanoporous carbon in cryogenic
hydrogen storage and electrochemical capacitance. Carbon, 47, 2259–2268.
38. Portet, C. et al. 2009. Electrical double-layer capacitance of zeolite-templated
carbon in organic electrolyte. Journal of the Electrochemical Society, 156, A1–A6.
39. Nishihara, H. et al. 2009. Investigation of the ion storage/transfer behavior in
an electrical double-layer capacitor by using ordered microporous carbons as
model materials. Chemistry, 15, 5355–5363.
40. Vixguterl, C. et al. 2004. Supercapacitor electrodes from new ordered porous
carbon materials obtained by a templating procedure. Materials Science and
Engineering B, 108, 148–155.
41. Kim, N. D. et al. 2008. Electrochemical capacitor performance of N-doped
mesoporous carbons prepared by ammoxidation. Journal of Power Sources, 180,
671–675.
42. Lufrano, F. et al. 2010. Mesoporous carbon materials as electrodes for electrochemical supercapacitors. International Journal of Electrochemical Science, 5,
903–916.
43. Beck, J. S. et al. 1992. New family of mesoporous molecular sieves prepared
with liquid crystal templates. Journal of the American Chemical Society, 114,
10834–10843.
44. Vix-Guterl, C. et al. 2005. Electrochemical energy storage in ordered porous carbon materials. Carbon, 43, 1293–1302.
45. Lei, Z. et al. 2011. Mesoporous carbon nanospheres with an excellent electrocapacitive performance. Journal of Materials Chemistry, 21, 2274.
46. Wang, D. W. et al. 2008. A 3-D aperiodic hierarchical porous graphitic carbon
material for high rate electrochemical capacitive energy storage. Angewandte
Chemie, 47, 373–376.
47. Hu, L. et al.2009. Highly conductive paper for energy storage devices. Proceedings
of National Academy of Sciences of the United States of America, 106, 21490–21494.
48. Yoon, B. 2004. Electrical properties of electrical double-layer capacitors with
integrated carbon nanotube electrodes. Chemical Physics Letters, 388, 170–174.
49. Honda, Y. et al. 2007. Aligned MWCNT sheet electrodes prepared by transfer
methodology providing high power capacitor performance. Electrochemical and
Solid State Letters, 10, A106–A110.
Electrochemical Supercapacitors for Energy Storage and Delivery
31. Obreja, V. 2008. On the performance of supercapacitors with electrodes based
on carbon nanotubes and carbon activated material: A review. Physica E, 40,
2596–2605.
32. Otowa, T. R. Tanibata, and M. Itoh. 1993. Production and adsorption characteristics of Maxsorb, a high surface area active carbon. Gas Separation and Purification,
7, 241–245.
33. Wen, Z. et al. 2009. An activated carbon with high capacitance from carbonization of a resorcinol–formaldehyde resin. Electrochemistry Communications, 11,
715–718.
34. Ania, C. O. et al. 2007. The large electrochemical capacitance of microporous doped carbon obtained by using a zeolite template. Advanced Functional
Materials, 17, 1828–1836.
35. Fuertes, A. et al. 2005. Templated mesoporous carbons for supercapacitor application. Electrochimica Acta, 50, 2799–2805.
36. Zhang, L. L. and X. S. Zhao. 2009. Carbon-based materials as supercapacitor
electrodes. Chemical Society Reviews, 38, 2520–2531.
37. Wang, H. et al. 2009. High performance of nanoporous carbon in cryogenic
hydrogen storage and electrochemical capacitance. Carbon, 47, 2259–2268.
38. Portet, C. et al. 2009. Electrical double-layer capacitance of zeolite-templated
carbon in organic electrolyte. Journal of the Electrochemical Society, 156, A1–A6.
39. Nishihara, H. et al. 2009. Investigation of the ion storage/transfer behavior in
an electrical double-layer capacitor by using ordered microporous carbons as
model materials. Chemistry, 15, 5355–5363.
40. Vixguterl, C. et al. 2004. Supercapacitor electrodes from new ordered porous
carbon materials obtained by a templating procedure. Materials Science and
Engineering B, 108, 148–155.
41. Kim, N. D. et al. 2008. Electrochemical capacitor performance of N-doped
mesoporous carbons prepared by ammoxidation. Journal of Power Sources, 180,
671–675.
42. Lufrano, F. et al. 2010. Mesoporous carbon materials as electrodes for electrochemical supercapacitors. International Journal of Electrochemical Science, 5,
903–916.
43. Beck, J. S. et al. 1992. New family of mesoporous molecular sieves prepared
with liquid crystal templates. Journal of the American Chemical Society, 114,
10834–10843.
44. Vix-Guterl, C. et al. 2005. Electrochemical energy storage in ordered porous carbon materials. Carbon, 43, 1293–1302.
45. Lei, Z. et al. 2011. Mesoporous carbon nanospheres with an excellent electrocapacitive performance. Journal of Materials Chemistry, 21, 2274.
46. Wang, D. W. et al. 2008. A 3-D aperiodic hierarchical porous graphitic carbon
material for high rate electrochemical capacitive energy storage. Angewandte
Chemie, 47, 373–376.
47. Hu, L. et al.2009. Highly conductive paper for energy storage devices. Proceedings
of National Academy of Sciences of the United States of America, 106, 21490–21494.
48. Yoon, B. 2004. Electrical properties of electrical double-layer capacitors with
integrated carbon nanotube electrodes. Chemical Physics Letters, 388, 170–174.
49. Honda, Y. et al. 2007. Aligned MWCNT sheet electrodes prepared by transfer
methodology providing high power capacitor performance. Electrochemical and
Solid State Letters, 10, A106–A110.
