Supercapacitor Fabrication by Titanium Alloy

Article Preview

Abstract:

In this paper, we used a simple process of anodization fabrication TiO2, TiO2, TiO2-MoO3, and TiO2-Ta2O5 nanotubes. Those high dielectric constant and large surface area of NT materials are suitable used for the ultracapacitors. Based on the nanotube structural characteristics such as pore diameter, porosity, and tube length, we also investigated and calculated the NT specific capacitance.

You might also be interested in these eBooks

Info:

Periodical:

Advanced Materials Research (Volumes 535-537)

Pages:

894-898

Citation:

Online since:

June 2012

Export:

Price:

[1] G.A. Snook, G.Z. Chen, D.J. Fray, M. Hughes, and M. Shaffer, J. Electroanal. Chem. Vol. 568 (2004), p.135.

Google Scholar

[2] P.R.W. Hudson and P.P. Phakey, Nature Vol. 269 (1997), p.229.

Google Scholar

[3] J. Lin, N. Masaaki, A. Tsukune, and M. Yamada, Appl. Phys. Lett. Vol. 74 (1999), p.2370.

Google Scholar

[4] H. Segawa, K. Mori, M. Itagati, K. Sakurki, and T. Ishiwta, US Patent 4499384 (1985).

Google Scholar

[5] C.C. Chen, Y. Bisrat, Z.P. Luo, R.E. Schaak, C.G. Chao, and D.C. Lagoudas, Nanotechnology Vol. 17 (2006), p.367.

Google Scholar

[6] C.C. Chen, J. H. Chen, C.G. Chao, and Wen C. Say, J. Mater. Sci. Vol. 40 (2005), p.4053.

Google Scholar

[7] H. Tsuchiya and P. Schmuki, Electrochem. Commun. Vol. 7 (2005), p.49.

Google Scholar

[8] I. Sieber, H. Hildebrand, A. Friedrich, and P. Schmuki, Electrochem. Commun. Vol. 7 (2005), p.97.

Google Scholar

[9] N. Mukherjee, M. Paulose, O.K Varghese., G.K Mor., and C.A. Grimes, J. Mater. Res. Vol. 18 (2003), p.2296.

Google Scholar

[10] G.B. Stefanovich, A.L. Pergament, and A.A. Velichko, and L.A. Stefanovich, J. Phys: Condens. Matter. Vol. 16 (2004), p.4013.

DOI: 10.1088/0953-8984/16/23/018

Google Scholar

[11] I. Paramasivam, Y. Nah, C. Das, N.K. Shrestha, and P. Schmuki, Chem. Eur. J. Vol. 16 (2010), p.8993.

Google Scholar

[12] A. Ghicov, S. Aldabergenova, H. Tsuchyia, and P. Schmuki, Angew. Chem. Int. Ed., Vol. 45 (2006), p.6993.

DOI: 10.1002/anie.200601957

Google Scholar

[13] Y. Yang, D. Kim, M. Yang, and P. Schmuki, Chem. Commun. Vol. 47 (2011), p.7746.

Google Scholar

[14] H. Jha, R. Hahn, and P. Schmuki, Electrochim. Acta Vol. 55 (2010), p.8883.

Google Scholar

[15] L.L. Li, C.Y. Tsai, H.P. Wu, C.C. Chen, and W.G. Diau, J. Mater. Chem. Vol. 20 (2010), p.2753.

Google Scholar

[16] M. Pourbaix: Atlas of Electrochemical Equilibria in Aqueous Solutions (NACE, USA 1974).

Google Scholar

[17] C.C, Chen, W.D. Jehng, L.L. Li, W.G. Diau, J. Electrochem. Soc. Vol. 156 (2009), p. C304.

Google Scholar

[18] M. Paulose, H.E. Prakasam, O.K. Varghese, L. Peng, K.C. Popat, G.K. Mor, T.A. Desai, C.A. Grimes, J. Phys. Chem. C Vol. 111 (2007), p.14992.

DOI: 10.1021/jp075258r

Google Scholar

[19] J.H. Lim, J. Choi, Small Vol. 3 (2007), p.1504.

Google Scholar

[20] G. Wang, Z.Y. Liu, J.N. Wu, and Q. Lu, Materials Letters Vol. 71 (2012), p.120.

Google Scholar