Nanoconfined Expansion Behavior of Hollow MnS@Carbon Anode with Extended Lithiation Cyclic Stability

Author:

Ma Zhipeng1,Song Ailing1,Liu Zhan1,Guo Yaqian1,Yang Xin1,Li Qing1,Fan Yuqian1,Dai Lei2,Tian Hao3,Qin Xiujuan1,Liu Hao3ORCID,Shao Guangjie14,Wang Guoxiu3

Affiliation:

1. Hebei Key Laboratory of Applied Chemistry Hebei Key Laboratory of Heavy Metal Deep‐Remediation in Water and Resource Reuse College of Environmental and Chemical Engineering Yanshan University Qinhuangdao 066004 China

2. College of Chemical Engineering North China University of Science and Technology Tangshan 063009 China

3. Centre for Clean Energy Technology School of Mathematical and Physical Sciences Faculty of Science University of Technology Sydney Broadway Sydney NSW 2007 Australia

4. State Key Laboratory of Metastable Materials Science and Technology Yanshan University Qinhuangdao 066004 China

Abstract

AbstractThe construction of hollow nanostructure by compositing with carbonaceous materials is generally considered an effective strategy to mitigate the drastic volume expansion of transition metal sulfides (TMSs) with high theoretical specific capacity in the process of lithium storage. However, designing well‐controlled architectures with extended lithiation cyclic stability, and ease the expansion of the electroactive materials into the reserved hollow spaces still needs to be developed. Herein, using MnS as an example, the hollow double‐shell carbon‐coated TMSs architecture is designed to achieve the controllable operation of shell thickness to regulate interfacial stress. The functional architecture enables the high‐capacity MnS to reach reversible capacities and extended lithiation cycling stability at high current densities. In situ transmission electron microscopy, optical observation characterizations and finite elements are used to analyze the nanoconfined expansion behavior of hollow MnS@C anodes. The as‐designed hollow structure with a carbon shell thickness ≈12.5 nm can effectively restrict the drastic expansion of MnS nanoshell into inner voids with compressive stress. This study demonstrates a general strategy to design functional carbon coating metal sulfides with tailored interfacial stress.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Hebei Province

University of Technology Sydney

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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