Interfacial Synergy in Mo2C/MoC Heterostructure Promoting Sequential Polysulfide Conversion in High‐Performance Lithium–Sulfur Battery

Author:

Liu Ximeng1ORCID,Wang Junhui1,Wang Wanwan2,Liu Yu3,Sun Jianguo1,Wang Haimei1,Zhao Qi1,Liu Weihao1,Huang Qilin1,Wang Shijie2,An Qinyou3,Wang Qing1,Shen Lei4,Wang John15ORCID

Affiliation:

1. Department of Materials Science and Engineering National University of Singapore Singapore 117574 Singapore

2. Institute of Materials Research and Engineering (IMRE) A*STAR (Agency for Science Technology and Research) 2 Fusionopolis Way Singapore 138634 Singapore

3. State Key Laboratory of Advanced Technology for Materials Synthesis and Processing Wuhan University of Technology Wuhan Hubei 430070 P. R. China

4. Department of Mechanical Engineering National University of Singapore Singapore 117575 Singapore

5. National University of Singapore (Chongqing) Research Institute Chongqing 401123 P. R. China

Abstract

AbstractA rational design of sulfur host is the key to conquering the“polysulfide shuttle effects” by accelerating the polysulfide conversion. Since the process involves solid–liquid–solid multistep phase transitions, purposely‐engineered heterostructure catalysts with various active regions for catalyzing conversion steps correspondingly are beneficial to promote the overall conversion process. However, the functionalities of the materials surface and interface in heterostructure catalysts remain unclear. In this work, an Mo2C/MoC catalyst with abundant Mo2C surface‐interface‐MoC surface tri‐active‐region is developed by in situ converting the MoZn‐metal organic framework. The experimental and simulation studies demonstrate the interface can catch long‐chain polysulfides and promote their conversion. Instead, the Mo2C and MoC tend to accommodate the short‐chain polysulfide and accelerate their conversion and the Li2S dissociation. Benefitting from the high catalytic ability, the Li–S battery assembled with the Mo2C/MoC‐S cathode shows more discrete redox reactions and delivers a high initial capacity of 1603.6 mAh g−1 at 1 C charging–discharging rate, which is over twofolds of the one assembled using individual hosts, and 80.4% capacity can be maintained after 1000 cycles at 3 C rate. This work has demonstrated a novel synergy between the interface and material surface, which will help the future design of high‐performance Li–S batteries.

Funder

National University of Singapore

Ministry of Education - Singapore

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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