Impacts of the Conductive Networks on Solid‐State Battery Operation

S Shimao Deng (Walker Department of Mechanical Engineering) Y Yixian Wang (School of Chemical Engineering & Technology, Key Laboratory for Green Chemical Technology of Ministry of Education) T Tianxiao Sun (Walker Department of Mechanical Engineering) W Wenlong Li M Mingyuan Ge J Jian Wang P Peter Cloetens P Piero Pianetta (Stanford Synchrotron Radiation Lightsource) D David Mitlin (Materials Science and Engineering Program Walker Department of Mechanical Engineering and Texas Materials Institute The University of Texas at Austin Austin TX 78712 USA) Y Yijin Liu (Walker Department of Mechanical Engineering)

Abstract

Abstract The micromorphology of composite cathodes is known to play a vital role in determining all‐solid‐state battery (ASSB) performance. However, much of our current understanding is derived from empirical observations, lacking a deeper mechanistic foundation. The “rocking chair” concept of battery chemistry requires maintaining charge neutrality, emphasizing the necessity of examining electrode micromorphology from the perspective of conductive networks. This study systematically investigates the microscopic electrochemical impacts of conductive network micromorphology by varying the Li + ‐to‐e − channel ratio in cathodes comprising LiNbO 3 ‐coated LiNi 0.8 Co 0.1 Mn 0.1 O 2 , Li 6 PS 5 Cl, and carbon fibers. Utilizing multiscale synchrotron‐based spectro‐microscopy, we unravel that unbalanced Li + and e − conducting channels intensify charge polarization within active cathode particles and accelerate their degradation. A further model system with X‐ray nano‐tomography resolved e − and Li + channels indicates that spatially uniform and well‐paired Li + and e − conducting channels are highly desirable as they could promote more uniform lithiation/delithiation, mitigating microscopic electrochemical polarization. Electrode‐scale X‐ray holotomography analysis reveals that the impact of conductive networks is particle‐size‐dependent, with smaller cathode particles being more significantly affected. These findings provide mechanistic insights into the interplay between conductive networks and all‐solid‐state battery operation, laying the groundwork for rational design and optimization of cathode architectures in future solid‐state battery technologies.

Article Details

Volume / Issue Vol. 64, Issue 39
Published September 22, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

S

Shimao Deng

Walker Department of Mechanical Engineering

Y

Yixian Wang

School of Chemical Engineering & Technology, Key Laboratory for Green Chemical Technology of Ministry of Education

T

Tianxiao Sun

Walker Department of Mechanical Engineering

W

Wenlong Li

M

Mingyuan Ge

J

Jian Wang

P

Peter Cloetens

P

Piero Pianetta

Stanford Synchrotron Radiation Lightsource

D

David Mitlin

Materials Science and Engineering Program Walker Department of Mechanical Engineering and Texas Materials Institute The University of Texas at Austin Austin TX 78712 USA

Y

Yijin Liu

Walker Department of Mechanical Engineering