Research on Lithium Storage Performance of MoS2/rGO Composites

Author:

Wang Yuyang12,Ge Tao132,Zhan Xinju4,Guo Laigong5,Liu Song6,Cheng Qian2,Deng Yifeng2

Affiliation:

1. Anhui Industrial Generic Technology Research Center for New Materials from Coal-based Solid Wastes Anhui University of Science and Technology Huainan, Anhui 232001 China

2. Department of Material Science and Engineering Anhui University of Science and Technology Huainan, Anhui 232001 China

3. Institute of Environment-friendly Materials and Occupational Health Anhui University of Science and Technology Wuhu 241003 China

4. WuHu ETC Battery Limited Wuhu 241000 China

5. Institute of Electrical and Information Engineering Anhui University of Science and Technology Huainan, Anhui 232001 China

6. College of Material and Chemical Engineering Tongren University Tongren 554300 China

Abstract

AbstractMoS2/reduced graphene oxide (MoS2‐I, MoS2/rGO‐II and MoS2/rGO‐V) composites with the mass ratio of MoS2 to GO is 1:1, 2:1 and 5:1, which were used as anode materials for lithium‐ion batteries (LIBs). The electrochemical properties and structure were tested and characterized. In the first cycle charge and discharge, the initial discharge capacity of MoS2/rGO‐II electrode is 821.8 mAh g−1 at 0.1 C, and the first coulomb efficiency is 92.09 %. The capacity attenuation of the second and third cycles is 65 mAh g−1 and 10.1 mAh g−1, respectively. Compared to MoS2 electrode, the attenuation of MoS2/rGO‐II electrode is obviously improved at different rates of 0.1 C, 0.2 C and 0.5 C, so MoS2/rGO‐II electrode shows excellent rate performance. Through the reaction mechanism analysis, it is concluded that most of the oxygen‐containing functional groups on the surface of GO are removed, but the conjugated network of graphene is not fully restored, resulting in the loss of electrical conductivity. However, the results of EIS directly show that rGO can still provide good conductivity for MoS2. Therefore, MoS2/rGO composites have great potential as electrodes for LIBs and broad research and application prospects in the field of energy storage.

Funder

Anhui University of Science and Technology

Publisher

Wiley

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