Effective transport network driven by tortuosity gradient enables high-electrochem-active solid-state batteries

Author:

Liu Qing-Song12,An Han-Wen1,Wang Xu-Feng1,Kong Fan-Peng1,Sun Ye-Cai1,Gong Yu-Xin1,Lou Shuai-Feng1,Shi Yi-Fan1,Sun Nan1,Deng Biao3,Wang Jian4,Wang Jia-Jun12ORCID

Affiliation:

1. Ministry of Industry and Information Technology (MIIT) Key Laboratory of Critical Materials Technology for New Energy Conversion and Storage, School of Chemistry and Chemical Engineering, Harbin Institute of Technology (HIT) , Harbin 150001 , China

2. Chongqing Research Institute of HIT , Chongqing 401135 , China

3. Shanghai Institute of Applied Physics, Chinese Academy of Sciences , Shanghai 201204 , China

4. Canadian Light Source Inc., University of Saskatchewan , Saskatoon , SK S7N 2V3 , Canada

Abstract

ABSTRACT Simultaneously achieving high electrochemical activity and high loading for solid-state batteries has been hindered by slow ion transport within solid electrodes, in particular with an increase in electrode thickness. Ion transport governed by ‘point-to-point’ diffusion inside a solid-state electrode is challenging, but still remains elusive. Herein, synchronized electrochemical analysis using X-ray tomography and ptychography reveals new insights into the nature of slow ion transport in solid-state electrodes. Thickness-dependent delithiation kinetics are spatially probed to identify that low-delithiation kinetics originate from the high tortuous and slow longitudinal transport pathways. By fabricating a tortuosity-gradient electrode to create an effective ion-percolation network, the tortuosity-gradient electrode architecture promotes fast charge transport, migrates the heterogeneous solid-state reaction, enhances electrochemical activity and extends cycle life in thick solid-state electrodes. These findings establish effective transport pathways as key design principles for realizing the promise of solid-state high-loading cathodes.

Funder

National Natural Science Foundation of China

Chinesisch-Deutsches Mobilitätspropgamm

Fundamental Research Funds for the Central Universities

Natural Science Funds of Heilongjiang Province

Heilongjiang Touyan Team

Natural Science Fund for Distinguished Young Scholars of Chongqing

Harbin Institute of Technology

Chongqing Research Institute of HIT

Publisher

Oxford University Press (OUP)

Subject

Multidisciplinary

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