4.2 Article

Extended Distribution of Relaxation Time Analysis for Electrochemical Impedance Spectroscopy

期刊

ELECTROCHEMISTRY
卷 90, 期 1, 页码 -

出版社

ELECTROCHEMICAL SOC JAPAN
DOI: 10.5796/electrochemistry.21-00111

关键词

Extended Distribution of Relaxation Time Analysis; Impedance Spectroscopy; Elastic Net Regularization; Spectrum Analysis

资金

  1. Japan Society for the Promotion of Science [17H01317, 19H02804]
  2. Japan Science and Technology Agency [JPMJCR1996]
  3. Grants-in-Aid for Scientific Research [17H01317, 19H02804] Funding Source: KAKEN

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The study introduces a novel method for analyzing electrochemical impedance spectra called the distribution of relaxation time (DRT). By utilizing an iterative elastic net regularization algorithm, the proposed method can solve spectra that cannot be analyzed using conventional methods. A comparison between the DRT results obtained from different regularization methods is conducted, and the practical issues of DRT analysis are discussed.
The distribution of relaxation time (DRT) is increasingly investigated as a novel analytical method for electrochemical impedance spectroscopy. However, this method has not yet been generalized, as it cannot be applied to a spectrum influenced by an isolated capacitator and a resistor connected in parallel with an inductor. To generalize the DRT analysis, we propose a novel principal relation and actual calculation methods using an iterative elastic net regularization algorithm. The elastic net regularization was implemented using the Levenberg-Marquardt method. The proposed algorithm aids in analyzing the DRT for spectra that cannot be solved using conventional methods. We compared the DRT results in different regularization methods obtained from the proposed program with those obtained from other open-source programs. Additionally, the realistic problems of the DRT analysis are discussed considering the calculated results and their theoretical basis. Different DRT curves can be obtained depending on the particular program and regularization methods, even when the spectrum is the same. Moreover, overconfidence in the electrochemical DRT method can be avoided with a clear understanding of DRT basics. [GRAPHICS] .

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