Revealing the Impact of Particle Size Distribution on Ageing of Lithium‐Ion Batteries with Frequency Response Analysis

Author:

Seng Chan Hoon1ORCID,Bläubaum Lars1ORCID,Vijayshankar Dandapani2ORCID,Röder Fridolin3ORCID,Nowak Christine45ORCID,Weber André1ORCID,Kwade Arno45ORCID,Krewer Ulrike1ORCID

Affiliation:

1. Institute for Applied Materials – Electrochemical Technologies Karlsruhe Institute of Technology Adenauerring 20b 76131 Karlsruhe Germany

2. Department of Metallurgical Engineering and Materials Science Indian Institute of Technology Bombay Mumbai 400076 India

3. Faculty of Engineering Science – Battery Management Methods University of Bayreuth 95440 Bayreuth Germany

4. Institute for Particle Technology TU Braunschweig Volkmaroder Str. 5 38106 Braunschweig Germany

5. Battery LabFactory Braunschweig TU Braunschweig Langer Kamp 8 38106 Braunschweig Germany

Abstract

AbstractIn‐depth analyses, including discharge behaviour, electrochemical impedance analysis, and for the first time, nonlinear frequency response analysis, are conducted on the ageing of negative electrodes with varying particle size distribution. The electrode‐resolved analysis is used to distinguish the kinetic and transport losses at the respective electrodes. For fine to medium‐sized particles at the negative electrode, ageing impacts are found more on the positive electrode: the impedance and nonlinear responses increase, suggesting that the charge transfer process at the positive electrode is worsened. Meanwhile, for coarse and broad negative particles, the impedance and nonlinear responses at negative electrodes decrease due to improved kinetics from micro‐cracking. The second harmonic reveals a change in the nature of the charge transfer during ageing: the charge transfer process at the positive electrode becomes asymmetric for fine and medium‐sized negative particles. Vice versa, the charge transfer process at the negative electrode becomes symmetric for coarse and broad negative particles.

Publisher

Wiley

Subject

Electrochemistry,Electrical and Electronic Engineering,Energy Engineering and Power Technology

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