Construction of Elastic and Conductive Channels for High‐Rate and High‐Areal‐Capacity Sulfur Cathodes in All‐Solid‐State Lithium–Sulfur Batteries

Author:

Ma Ruqin1ORCID,Fan Yuteng1,Jin Yanting1,Pan Siyuan1,Zhong Haoyue1,Luo Yu1,Gu Jiabao1,Luo Mingzeng1,Wu Yuqi2,Hu Wenxuan1,Chen Pengzhan1,Su Yu1,Wu Guanyu1,Yan Jiawei1,Gao Jun1,Gong Zhengliang123,Yang Yong123ORCID

Affiliation:

1. State Key Laboratory for Physical Chemistry of Solid Surface College of Chemistry and Chemical Engineering Xiamen University Xiamen 361005 China

2. College of Energy Xiamen University Xiamen 361102 China

3. Innovation Laboratory for Sciences and Technologies of Energy Materials (IKKEM) Xiamen 361102 China

Abstract

AbstractAll solid‐state lithium–sulfur batteries (ASSLSBs) have attracted significant attention due to their enhanced safety and superior energy density. However, the considerable volume change during cycling poses a challenge, resulting in electrochemical‐mechanical degradation. To address this issue, polypyrrole (PPy) is coated on a nitrogen‐doped carbon nanotube (NCNT) network to exhibit suitable conductivity and compatibility with sulfide electrolyte. Functionally, PPy@NCNT provides a continuous and conductive pathway, reducing the tortuosity of charge transport. Mechanically, operando pressure measurements and atomic force microscopy (AFM) tests are conducted, demonstrating that the flexible and viscoelastic structure of PPy@NCNT can alleviate local stress. The axial pressure on the cathode can be reduced by 11% with a sulfur area capacity of 3 mg cm−2 at 30 °C. At a high areal mass loading of 4.5 mg cm−2, a high areal capacity of 6 mAh cm−2 (1348 mAh g−1, 1C = 1675 mA g−1) is achieved at 0.1C, maintaining stability over 300 cycles at 0.2C. Remarkably, it can achieve an areal capacity of over 8.8 mAh cm−2 and stable cycling even at 60 °C. This study, being the first to regulate mechano‐electrochemical action in ASSLSBs with flexible conducting polymer, highlights the significance of integrating a continuous and elastic network into solid‐state conversion‐type cathodes.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

Wiley

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