132
Electrochemical Supercapacitors for Energy Storage and Delivery
References
1. Conway, B. E., V. Birss, and J. Wojtowicz. 1997. The role and utilization of pseudocapacitance for energy storage by supercapacitors. Journal of Power Sources,
66, 1–14.
2. Conway, B. E. 1999. Electrochemical Supercapacitors. New York: Plenum.
3. Sun, X. et al. 2011. Porous nickel oxide nano-sheets for high performance pseudocapacitance materials. Journal of Materials Chemistry, 21, 16581–16588.
4. Raistrick, I. D. 1992. Electrochemical capacitors. In Electrochemistry of
Semiconductors and Electronics: Processes and Devices, New York: Noyes, 297–365.
5. Zheng, J. P. 1995. A new charge storage mechanism for electrochemical capacitors. Journal of the Electrochemical Society, 142, L6–L8.
6. Hu, C. 2004. Effects of substrates on the capacitive performance of RuO x ·nH 2 O
and activated carbon–RuO x electrodes for supercapacitors. Electrochimica Acta,
49, 3469–3477.
7. Cottineau, T. et al. 2005. Nanostructured transition metal oxides for aqueous
hybrid electrochemical supercapacitors. Applied Physics A, 82, 599–606.
8. Simon, P. and Y. Gogotsi. 2008. Materials for electrochemical capacitors. Nature:
Materials, 7, 845-854.
9. Fan, Z. et al. 2006. Preparation and characterization of manganese oxide/CNT
composites as supercapacitive materials. Diamond and Related Materials, 15,
1478-1483.
10. Yang, Y. and C. Huang. 2009. Effect of synthetic conditions, morphology, and
crystallographic structure of MnO 2 on its electrochemical behavior. Journal of
Solid State Electrochemistry, 14, 1293–1301.
11. Zhang, J. et al. 2011. Synthesis, characterization and capacitive performance of
hydrous manganese dioxide nanostructures. Nanotechnology, 22, 125703.
12. Yan, J. et al. 2010. Preparation of graphene nanosheet/carbon nanotube/polyaniline composite as electrode material for supercapacitors. Journal of Power
Sources, 195, 3041–3045.
13. Wang, Y. G., H. Q. Li, and Y. Y. Xia/ 2006. Ordered whisker-like polyaniline
grown on the surface of mesoporous carbon and its electrochemical capacitance
performance. Advanced Materials, 18, 2619–2623.
14. Zhang, J. et al. 2010. Synthesis of polypyrrole film by pulse galvanostatic method
and its application as supercapacitor electrode materials. Journal of Materials
Science, 45, 1947–1954.
15. Liu, R., and S. B. Lee. 2008. MnO 2 /poly(3,4-ethylenedioxythiophene) coaxial
nanowires by one-step coelectrodeposition for electrochemical energy storage.
Journal of the American Chemical Society, 130, 2942–2943.
16. Patra, S., and N. Munichandraiah. 2007. Supercapacitor studies of
electrochemi¬cally deposited PEDOT on stainless steel substrate. Journal of
Applied Polymer Science, 106, 1160–1171.
17. Beguin, F., E. Raymundo-Pinero, and E. Frackowiak. 2009. Carbons for
Electrochemical Energy Storage and Conversion Systems, 358–372.
18. Bard, A. J. and L. R. Faulkner. 1980. Electrochemical Methods, Fundamentals, and
Applications, New York: John Wiley & Sons.
Electrochemical Supercapacitors for Energy Storage and Delivery
References
1. Conway, B. E., V. Birss, and J. Wojtowicz. 1997. The role and utilization of pseudocapacitance for energy storage by supercapacitors. Journal of Power Sources,
66, 1–14.
2. Conway, B. E. 1999. Electrochemical Supercapacitors. New York: Plenum.
3. Sun, X. et al. 2011. Porous nickel oxide nano-sheets for high performance pseudocapacitance materials. Journal of Materials Chemistry, 21, 16581–16588.
4. Raistrick, I. D. 1992. Electrochemical capacitors. In Electrochemistry of
Semiconductors and Electronics: Processes and Devices, New York: Noyes, 297–365.
5. Zheng, J. P. 1995. A new charge storage mechanism for electrochemical capacitors. Journal of the Electrochemical Society, 142, L6–L8.
6. Hu, C. 2004. Effects of substrates on the capacitive performance of RuO x ·nH 2 O
and activated carbon–RuO x electrodes for supercapacitors. Electrochimica Acta,
49, 3469–3477.
7. Cottineau, T. et al. 2005. Nanostructured transition metal oxides for aqueous
hybrid electrochemical supercapacitors. Applied Physics A, 82, 599–606.
8. Simon, P. and Y. Gogotsi. 2008. Materials for electrochemical capacitors. Nature:
Materials, 7, 845-854.
9. Fan, Z. et al. 2006. Preparation and characterization of manganese oxide/CNT
composites as supercapacitive materials. Diamond and Related Materials, 15,
1478-1483.
10. Yang, Y. and C. Huang. 2009. Effect of synthetic conditions, morphology, and
crystallographic structure of MnO 2 on its electrochemical behavior. Journal of
Solid State Electrochemistry, 14, 1293–1301.
11. Zhang, J. et al. 2011. Synthesis, characterization and capacitive performance of
hydrous manganese dioxide nanostructures. Nanotechnology, 22, 125703.
12. Yan, J. et al. 2010. Preparation of graphene nanosheet/carbon nanotube/polyaniline composite as electrode material for supercapacitors. Journal of Power
Sources, 195, 3041–3045.
13. Wang, Y. G., H. Q. Li, and Y. Y. Xia/ 2006. Ordered whisker-like polyaniline
grown on the surface of mesoporous carbon and its electrochemical capacitance
performance. Advanced Materials, 18, 2619–2623.
14. Zhang, J. et al. 2010. Synthesis of polypyrrole film by pulse galvanostatic method
and its application as supercapacitor electrode materials. Journal of Materials
Science, 45, 1947–1954.
15. Liu, R., and S. B. Lee. 2008. MnO 2 /poly(3,4-ethylenedioxythiophene) coaxial
nanowires by one-step coelectrodeposition for electrochemical energy storage.
Journal of the American Chemical Society, 130, 2942–2943.
16. Patra, S., and N. Munichandraiah. 2007. Supercapacitor studies of
electrochemi¬cally deposited PEDOT on stainless steel substrate. Journal of
Applied Polymer Science, 106, 1160–1171.
17. Beguin, F., E. Raymundo-Pinero, and E. Frackowiak. 2009. Carbons for
Electrochemical Energy Storage and Conversion Systems, 358–372.
18. Bard, A. J. and L. R. Faulkner. 1980. Electrochemical Methods, Fundamentals, and
Applications, New York: John Wiley & Sons.
