Browse > Article
http://dx.doi.org/10.33961/jecst.2020.00815

Conversion of a Constant Phase Element to an Equivalent Capacitor  

Chang, Byoung-Yong (Department of Chemistry, Pukyong National University)
Publication Information
Journal of Electrochemical Science and Technology / v.11, no.3, 2020 , pp. 318-321 More about this Journal
Abstract
Here I present a formula which converts a constant phase element (CPE) to its equivalent capacitor. Electrochemical impedance spectroscopy is capable of resolving a complex electrochemical processes into its faradaic and non-faradaic elements, and the non-faradaic process is frequently described as a CPE in place of a capacitor due to the non-ideality. Being described as a capacitor, the non-faradaic element provides information by its capacitance, but a CPE cannot provide a physical meaning. In order to solve the problem, the CPE has been dealt with as an equivalent capacitor of which the capacitance provides practical information. Succeeding the two methods previously suggested, a new conversion method is suggested in this report. While the previous ones manipulate only the CPE, the new method takes both the CPE and its related resistor into account for conversion. By comparing the results obtained by the three methods, we learn that the results are nearly the same within tolerable ranges, and conclude that any of the method choices is acceptable depending on the conditions of the system of interest.
Keywords
Electrochemical Impedance; Constant Phase Element; Nyquist Plot;
Citations & Related Records
Times Cited By KSCI : 6  (Citation Analysis)
연도 인용수 순위
1 B.-Y. Chang and S.-M. Park, Annu. Rev. Anal. Chem, 2010, 3, 207-229.   DOI
2 J.-B. Jorcin, M.E. Orazem, N. Pebere and B. Tribollet, Electrochim. Acta, 2006, 51(8-9), 1473-1479.   DOI
3 A. Lasia, in: Conway, B. E. and Bockris, J. O. M., Electrochemical Impedance Spectroscopy and its Applications in Modern Aspects of Electrochemistry, Springer US, 2002.
4 E. Barsoukov and J.R. Macdonald, Impedance Spectroscopy: Theory, Experiment, and Applications, John Wiley & Sons, 2005.
5 P. Zoltowski, J. Electroanal. Chem, 1998, 443(1), 149-154.   DOI
6 E. Cuervo-Reyes, C.P. Scheller, M. Held and U. Sennhauser, J. Electrochem. Soc, 2015, 162(8), A1585-A1591.   DOI
7 M. Naseri, L. Fotouhi and A. Ehsani, J. Electrochem. Sci. Technol, 2018, 9, 28-36.   DOI
8 F. Fekri, M. Shahidi, M.M. Foroughi and M. Kazemipour, J. Electrochem. Sci. Technol, 2019, 10, 148-158.   DOI
9 W. Choi, H.-C. Shin, J.M. Kim, J.-Y. Choi and W.-S. Yoon, J. Electrochem. Sci. Technol, 2020, 11, 1-13.   DOI
10 E.P.M. van Westing, G.M. Ferrari and J.H.W. de Wit, Corrosion Science, 1993, 34(9), 1511-1530.   DOI
11 C.H. Hsu and F. Mansfeld, Corrosion, 2001, 57(9), 747-748.   DOI
12 M.E. Orazem, P. Shukla and M.A. Membrino, Electrochim. Acta, 2002, 47(13-14), 2027-2034.   DOI
13 M. Kendig and F. Mansfeld, Corrosion, 1983, 39(11), 466-467.   DOI