Long‐lasting, reinforced electrical networking in a high‐loading Li2S cathode for high‐performance lithium–sulfur batteries

Author:

Kim Hun1,Min Kyeong‐Jun1,Bang Sangin1,Hwang Jang‐Yeon2,Kim Jung Ho3,Yoon Chong S.4,Sun Yang‐Kook13ORCID

Affiliation:

1. Department of Energy Engineering Hanyang University Seoul Republic of Korea

2. Department of Materials Science and Engineering Chonnam National University Gwangju Republic of Korea

3. Institute for Superconducting & Electronic Materials (ISEM), Australian Institute of Innovative Materials (AIIM) University of Wollongong New South Wales North Wollongong Australia

4. Department of Materials Science and Engineering Hanyang University Seoul Republic of Korea

Abstract

AbstractRealizing a lithium sulfide (Li2S) cathode with both high energy density and a long lifespan requires an innovative cathode design that maximizes electrochemical performance and resists electrode deterioration. Herein, a high‐loading Li2S‐based cathode with micrometric Li2S particles composed of two‐dimensional graphene (Gr) and one‐dimensional carbon nanotubes (CNTs) in a compact geometry is developed, and the role of CNTs in stable cycling of high‐capacity Li–S batteries is emphasized. In a dimensionally combined carbon matrix, CNTs embedded within the Gr sheets create robust and sustainable electron diffusion pathways while suppressing the passivation of the active carbon surface. As a unique point, during the first charging process, the proposed cathode is fully activated through the direct conversion of Li2S into S8 without inducing lithium polysulfide formation. The direct conversion of Li2S into S8 in the composite cathode is ubiquitously investigated using the combined study of in situ Raman spectroscopy, in situ optical microscopy, and cryogenic transmission electron microscopy. The composite cathode demonstrates unprecedented electrochemical properties even with a high Li2S loading of 10 mg cm–2; in particular, the practical and safe Li–S full cell coupled with a graphite anode shows ultra‐long‐term cycling stability over 800 cycles.

Funder

Korea Institute of Energy Technology Evaluation and Planning

Publisher

Wiley

Subject

Materials Chemistry,Energy (miscellaneous),Materials Science (miscellaneous),Renewable Energy, Sustainability and the Environment

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