Scaly MoS2/rGO Composite as an Anode Material for High-Performance Potassium-Ion Battery

Author:

Wang Bin123ORCID,Deng Tao12,Liu Jingjing1,Sun Beibei13,Su Yun13,Ti Ruixia13,Shangguan Lihua1,Zhang Chaoyang1,Tang Yu12,Cheng Na1,Xu Yan123,Guo Junling4

Affiliation:

1. School of Physics and Electronic Engineering, Xinxiang University, Xinxiang 453003, China

2. School of Mechanical Engineering, Chengdu University, Chengdu 610106, China

3. Henan Province Engineering Research Center of New Energy Storage System, Xinxiang University, Xinxiang 453003, China

4. Country State Center for International Cooperation on Designer Low-Carbon & Environmental Materials, School of Materials Science and Engineering, Zhengzhou University, 100 Kexue Avenue, Zhengzhou 450001, China

Abstract

Potassium-ion batteries (PIBs) have been widely studied owing to the abundant reserves, widespread distribution, and easy extraction of potassium (K) resources. Molybdenum disulfide (MoS2) has received a great deal of attention as a key anode material for PIBs owing to its two-dimensional diffusion channels for K+ ions. However, due to its poor electronic conductivity and the huge influence of embedded K+ ions (with a large ionic radius of 3.6 Å) on MoS2 layer, MoS2 anodes exhibit a poor rate performance and easily collapsed structure. To address these issues, the common strategies are enlarging the interlayer spacing to reduce the mechanical strain and increasing the electronic conductivity by adding conductive agents. However, simultaneous implementation of the above strategies by simple methods is currently still a challenge. Herein, MoS2 anodes on reduced graphene oxide (MoS2/rGO) composite were prepared using one-step hydrothermal methods. Owing to the presence of rGO in the synthesis process, MoS2 possesses a unique scaled structure with large layer spacing, and the intrinsic conductivity of MoS2 is proved. As a result, MoS2/rGO composite anodes exhibit a larger rate performance and better cycle stability than that of anodes based on pure MoS2, and the direct mixtures of MoS2 and graphene oxide (MoS2-GO). This work suggests that the composite material of MoS2/rGO has infinite possibilities as a high-quality anode material for PIBs.

Funder

National Nature Science Foundation of China

Science and Technology Department of Henan Province

College Student Innovation Key Project of Henan Province

University Key Scientific Research Project of Henan Province

College Young Teachers Training Program of Henan Province

Enterprise Technology R&D Project

Publisher

MDPI AG

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