4.8 Article

Two-Dimensional WS2@Nitrogen-Doped Graphite for High-Performance Lithium Ion Batteries: Experiments and Molecular Dynamics Simulations

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 10, 期 44, 页码 37928-37936

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.8b10133

关键词

tungsten disulfide; nanosheets; lithium ion battery; N-doped graphite; molecular dynamics simulations

资金

  1. Ministry of Science and ICT [NRF-2014R1A6A1030732, 2017K000494, 2018R1A2B6003634, 2018R1A2B2006474, 2017H1D3A1A01014082]
  2. National Institute of Supercomputing and Network/Korea Institute of Science and Technology Information [KSC-2018-C2-0022]
  3. Korea University
  4. MOST
  5. POSTECH
  6. Korea Basic Science Institute under the RD program [D38700]
  7. KIST Institutional Program [2E27061]
  8. KETEP [20162010103990]
  9. Jeonju University

向作者/读者索取更多资源

As promising candidates for anode materials in lithium ion batteries (LIB), two-dimensional tungsten disulfide (WS2) and WS2@(N-doped) graphite composites were synthesized, and their electrochemical properties were comprehensibly studied in conjunction with calculations. The WS2 nanosheets, WS2@graphite, and WS2@N-doped graphite (N-graphite) exhibit outstanding cycling performance with capacities of 633, 780, and 963 mA h g(-1), respectively. To understand their lithium storage mechanism, first-principles calculations involving a series of ab initio NVT-NPT molecular dynamics simulations were conducted. The calculated discharge curves for amorphous phase are well matched with the experimental ones, and the capacities reach 620, 743, and 915 mA h g(-1) for WS2, WS2@graphite, and WS2@N-graphite, respectively. The large capacities of the two composites can be attributed to the tendency of W and Li atoms to interact with graphite, suppressing the formation of W metal clusters. In the case of WS2@N-graphite, vigorous amorphization of the N-graphite enhances the interaction of W and Li atoms with the fragmented N-graphite in such a way that unfavorable Li-W repulsion is avoided at very early stage of lithiation. As a result, the volume expansion in WS2@graphite and WS2@N-graphite is calculated to be remarkably small (only 6 and 44%, respectively, versus 150% for WS2). Therefore WS2@(N-)graphite composites are expected to be almost free of mechanical pulverization after repeated cycles, which makes them promising and excellent candidates for high-performance LIBs.

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