Electrochemical impedance spectroscopy beyond linearity and stationarity-A critical review

被引:44
作者
Hallemans, Noel [1 ,2 ]
Howey, David [3 ,4 ]
Battistel, Alberto [5 ]
Saniee, Nessa Fereshteh [2 ]
Scarpioni, Federico [6 ]
Wouters, Benny [7 ]
La Mantia, Fabio [6 ,8 ]
Hubin, Annick [7 ]
Widanage, Widanalage Dhammika [2 ,4 ]
Lataire, John [1 ]
机构
[1] Vrije Univ Brussel, Res Grp Fundamental Elect & Instrumentat, Pleinlaan 2, B-1050 Brussels, Belgium
[2] Univ Warwick, WMG, Coventry 7AL CV4, England
[3] Univ Oxford, Dept Engn Sci, Oxford OX1 3PJ, England
[4] Harwell Sci & Innovat Campus, Faraday Inst Quad One, Didcot, England
[5] Furtwangen Univ, Inst Tech Med, Jakob Kienzle Str 17, D-78054 Villingen Schwenningen, Germany
[6] Fraunhofer Inst Mfg Technol & Adv Mat IFAM, Wiener Str 12, D-28359 Bremen, Germany
[7] Vrije Univ Brussel, Res Grp Electrochem & Surface Engn, Pleinlaan 2, B-1050 Brussels, Belgium
[8] Bremen Univ, Energy Storage & Energy Convers Syst, Wiener Str 12, D-28359 Bremen, Germany
基金
欧洲研究理事会; “创新英国”项目;
关键词
EIS; Dynamic EIS; NLEIS; Multisine; Nonlinearity; Nonstationarity; Frequency domain; Li-ion; Battery; FARADAIC ADMITTANCE MEASUREMENTS; LITHIUM-ION BATTERIES; INTERMODULATED NONLINEAR-ANALYSIS; KRAMERS-KRONIG TRANSFORMS; DYNAMIC IMPEDANCE; DEGRADATION MODES; REDOX COUPLE; FREQUENCY; BEHAVIOR; CORROSION;
D O I
10.1016/j.electacta.2023.142939
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Electrochemical impedance spectroscopy (EIS) is a widely used experimental technique for characterising ma-terials and electrode reactions by observing their frequency-dependent impedance. Classical EIS measurements require the electrochemical process to behave as a linear time-invariant system. However, electrochemical processes do not naturally satisfy this assumption: the relation between voltage and current is inherently nonlinear and evolves over time. Examples include the corrosion of metal substrates and the cycling of Li -ion batteries. As such, classical EIS only offers models linearised at specific operating points. During the last decade, solutions were developed for estimating nonlinear and time-varying impedances, contributing to more general models. In this paper, we review the concept of impedance beyond linearity and stationarity, and detail different methods to estimate this from measured current and voltage data, with emphasis on frequency domain approaches using multisine excitation. In addition to a mathematical discussion, we measure and provide examples demonstrating impedance estimation for a Li-ion battery, beyond linearity and stationarity, both while resting and while charging.
引用
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页数:23
相关论文
共 132 条
[21]   Development of Experimental Techniques for Parameterization of Multi-scale Lithium-ion Battery Models [J].
Chen, Chang-Hui ;
Planella, Ferran Brosa ;
O'Regan, Kieran ;
Gastol, Dominika ;
Widanage, W. Dhammika ;
Kendrick, Emma .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2020, 167 (08)
[22]  
Chukwu R, 2022, CHEMELECTROCHEM, V9, DOI 10.1002/celc.202200109
[23]   TIME FREQUENCY-DISTRIBUTIONS - A REVIEW [J].
COHEN, L .
PROCEEDINGS OF THE IEEE, 1989, 77 (07) :941-981
[24]  
Collet T., 2022, Electrochim. Acta
[25]   An operando ORP-EIS study of the copper reduction reaction supported by thiourea and chlorides as electrorefining additives [J].
Collet, Thomas ;
Hallemans, Noel ;
Wouters, Benny ;
Ramharter, Kristof ;
Lataire, John ;
Pintelon, Rik ;
Hubin, Annick .
ELECTROCHIMICA ACTA, 2021, 389
[26]   AN ALGORITHM FOR MACHINE CALCULATION OF COMPLEX FOURIER SERIES [J].
COOLEY, JW ;
TUKEY, JW .
MATHEMATICS OF COMPUTATION, 1965, 19 (90) :297-&
[27]   Faster and Healthier Charging of Lithium-Ion Batteries via Constrained Feedback Control [J].
Couto, Luis D. ;
Romagnoli, Raffaele ;
Park, Saehong ;
Zhang, Dong ;
Moura, Scott J. ;
Kinnaert, Michel ;
Garone, Emanuele .
IEEE TRANSACTIONS ON CONTROL SYSTEMS TECHNOLOGY, 2022, 30 (05) :1990-2001
[28]   FOURIER-TRANSFORM FARADAIC ADMITTANCE MEASUREMENTS .3. COMPARISON OF MEASUREMENT EFFICIENCY FOR VARIOUS TEST SIGNAL WAVEFORMS [J].
CREASON, SC ;
HAYES, JW ;
SMITH, DE .
JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 1973, 47 (01) :9-46
[29]  
CREASON SC, 1972, J ELECTROANAL CHEM, V36, pAP1
[30]  
CREASON SC, 1972, J ELECTROANAL CHEM, V40, P1