133
Fundamentals of Electrochemical Pseudocapacitors
19. Hubbard, A. T. and F. C. Anson. 1966. Linear potential sweep voltammetry in
thin layers of solution. Analytical Chemistry, 38, 58–61.
20. Gileadi, E. and B. E. Conway. 1965. Modern Aspects of Electrochemistry, Vol. 3,
London: Butterworth.
21. Tsay, K. C., L. Zhang, and J. Zhang. 2012. Effects of electrode layer composition
and thickness and electrolyte concentration on both specific capacitance and
energy density of supercapacitor. Electrochimica Acta, 60, 428–436.
22. Conway, B. E. and E. Gileadi. 1962. Kinetic theory of pseudocapacitance and
electrode reactions at appreciable surface coverage. Transactions of the Faraday
Society, 58, 2493.
23. Conway, B. E. and W. G. Pell, Double-layer and pseudocapacitance types of
electrochemical capacitors and their applications to the development of hybrid
devices. Journal of Solid State Electrochemistry, 7, 637–644.
24. Grigorchak, I. I. 2003. Redox processes and pseudocapacitance of capacitors in
light of intercalation. Nanotechnologies, 39, 770–773.
25. Bhattacharya, J. and A. Van der Ven. 2011. First principles study of competing
mechanisms of non-dilute Li diffusion in spinel Li x -TiS 2 . Physical Reviews B,
83,.1–9.
26. Garcia-Belmonte, G. et al. 2006. Jump diffusion coefficient of different cations
intercalated into amorphous WO 3 . Solid State Ionics, 177, 1635–1637.
27. Zheng, J. P. and T. R. Jow. 1995. A new charge storage mechanism for electrochemical capacitors. Journal of the Electrochemical Society, 142, 50–52.
28. Wang, X. et al. 2008. Pseudocapacitance of ruthenium oxide/carbon black
composites for electrochemical capacitors. Journal of University of Science and
Technology Beijing, 15, 816–821.
29. Toupin, M., T. Brousse, and D. Belanger. 2004. Charge storage mechanism
of MnO 2 electrode used in aqueous electrochemical capacitor. Journal of the
American Chemical Society, 16, 3184–3190.
30. Khomenko, V. et al. 2005. High-voltage asymmetric supercapacitors operating
in aqueous electrolyte. Applied Physics A, 82, 567–573.
31. Raymundo-Piñero, E. et al. 2005. Performance of manganese oxide–CNT
composites as electrode materials for electrochemical capacitors. Journal of the
Electrochemical Society, 152, A229.
32. Khomenko, V., E. Frackowiak, and F. Beguin. 2005. Determination of the specific
capacitance of conducting polymer/nanotubes composite electrodes using different cell configurations. Electrochimica Acta, 50, 2499–2506.
33. Delahay, P. 1966. Electrode processes without separation of double-layer charging. Journal of Physical Chemistry, 70.
34. Delahay, P. and K. Holub. 1968. The admittance for an infinite exchange current.
Journal of Electroanalytical Chemistry, 16, 131–136.
35. Zhang, K. et al. 2010. Graphene–polyaniline nanofiber composites as supercapacitor electrodes. Chemistry of Materials, 22, 1392–1401.
36. Lota, G. and E. Frackowiak. 2010. Pseudocapacitance effects for enhancement of
capacitor performance. Fuel Cells, 10, 848–855.
37. Pollak, E., G. Salitra, and D. Aurbach. 2007. Can conductivity measurements
serve as a tool for assessing pseudocapacitance processes occurring on carbon
electrodes? Journal of Electroanalytical Chemistry, 602, 195–202.
38. Frackowiak, E. et al. 2006. Optimisation of supercapacitors using carbons with
controlled nanotexture and nitrogen content. Electrochimica Acta, 51, 2209–2214.
Fundamentals of Electrochemical Pseudocapacitors
19. Hubbard, A. T. and F. C. Anson. 1966. Linear potential sweep voltammetry in
thin layers of solution. Analytical Chemistry, 38, 58–61.
20. Gileadi, E. and B. E. Conway. 1965. Modern Aspects of Electrochemistry, Vol. 3,
London: Butterworth.
21. Tsay, K. C., L. Zhang, and J. Zhang. 2012. Effects of electrode layer composition
and thickness and electrolyte concentration on both specific capacitance and
energy density of supercapacitor. Electrochimica Acta, 60, 428–436.
22. Conway, B. E. and E. Gileadi. 1962. Kinetic theory of pseudocapacitance and
electrode reactions at appreciable surface coverage. Transactions of the Faraday
Society, 58, 2493.
23. Conway, B. E. and W. G. Pell, Double-layer and pseudocapacitance types of
electrochemical capacitors and their applications to the development of hybrid
devices. Journal of Solid State Electrochemistry, 7, 637–644.
24. Grigorchak, I. I. 2003. Redox processes and pseudocapacitance of capacitors in
light of intercalation. Nanotechnologies, 39, 770–773.
25. Bhattacharya, J. and A. Van der Ven. 2011. First principles study of competing
mechanisms of non-dilute Li diffusion in spinel Li x -TiS 2 . Physical Reviews B,
83,.1–9.
26. Garcia-Belmonte, G. et al. 2006. Jump diffusion coefficient of different cations
intercalated into amorphous WO 3 . Solid State Ionics, 177, 1635–1637.
27. Zheng, J. P. and T. R. Jow. 1995. A new charge storage mechanism for electrochemical capacitors. Journal of the Electrochemical Society, 142, 50–52.
28. Wang, X. et al. 2008. Pseudocapacitance of ruthenium oxide/carbon black
composites for electrochemical capacitors. Journal of University of Science and
Technology Beijing, 15, 816–821.
29. Toupin, M., T. Brousse, and D. Belanger. 2004. Charge storage mechanism
of MnO 2 electrode used in aqueous electrochemical capacitor. Journal of the
American Chemical Society, 16, 3184–3190.
30. Khomenko, V. et al. 2005. High-voltage asymmetric supercapacitors operating
in aqueous electrolyte. Applied Physics A, 82, 567–573.
31. Raymundo-Piñero, E. et al. 2005. Performance of manganese oxide–CNT
composites as electrode materials for electrochemical capacitors. Journal of the
Electrochemical Society, 152, A229.
32. Khomenko, V., E. Frackowiak, and F. Beguin. 2005. Determination of the specific
capacitance of conducting polymer/nanotubes composite electrodes using different cell configurations. Electrochimica Acta, 50, 2499–2506.
33. Delahay, P. 1966. Electrode processes without separation of double-layer charging. Journal of Physical Chemistry, 70.
34. Delahay, P. and K. Holub. 1968. The admittance for an infinite exchange current.
Journal of Electroanalytical Chemistry, 16, 131–136.
35. Zhang, K. et al. 2010. Graphene–polyaniline nanofiber composites as supercapacitor electrodes. Chemistry of Materials, 22, 1392–1401.
36. Lota, G. and E. Frackowiak. 2010. Pseudocapacitance effects for enhancement of
capacitor performance. Fuel Cells, 10, 848–855.
37. Pollak, E., G. Salitra, and D. Aurbach. 2007. Can conductivity measurements
serve as a tool for assessing pseudocapacitance processes occurring on carbon
electrodes? Journal of Electroanalytical Chemistry, 602, 195–202.
38. Frackowiak, E. et al. 2006. Optimisation of supercapacitors using carbons with
controlled nanotexture and nitrogen content. Electrochimica Acta, 51, 2209–2214.
