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Research Article | Open Access

Electrochemical Realization of 3D Interconnected MoS3/PPy Nanowire Frameworks as Sulfur-Equivalent Cathode Materials for Li-S Batteries

Hongtao Yu1,2Andreas Siebert3Shilin Mei1Raul Garcia-Diez3Roberto Félix3Ting Quan1Yaolin Xu1Johannes Frisch3Regan G. Wilks3,4Marcus Bär3,4,5,6 Chun Pei2Yan Lu1,7 ( )
Department for Electrochemical Energy Storage, Helmholtz-Zentrum Berlin für Materialien und Energie GmbH (HZB), Hahn-Meitner Platz 1, 14109 Berlin, Germany
Guangdong Province Key Laboratory of Durability for Marine Civil Engineering, School of Civil Engineering, Shenzhen University, Shenzhen, Guangdong 518060, China
Department of Interface Design, HZB, Albert-Einstein-Str. 15, 12489 Berlin, Germany
Energy Materials In-Situ Laboratory Berlin (EMIL), Albert-Einstein-Str. 15, 12489 Berlin, Germany
Helmholtz-Institute Erlangen-Nürnberg for Renewable Energy (HI ERN), Albert-Einstein-Str. 15, 12489 Berlin, Germany
Department of Chemistry and Pharmacy, Friedrich-Alexander-Universität Erlangen-Nürnberg, Egerlandstr. 3 91058, Erlangen Germany
Institute of Chemistry, University of Potsdam, 14467, Potsdam Germany
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Abstract

The development of freestanding and binder-free electrode is an effective approach to perform the inherent capacity of active materials and promote the mechanism study by minimizing the interference from additives. Herein, we construct a freestanding cathode composed of MoS3/PPy nanowires (NWs) deposited on porous nickel foam (NF) (MoS3/PPy/NF) through electrochemical methods, which can work efficiently as sulfur-equivalent cathode material for Li-S batteries. The structural stability of the MoS3/PPy/NF cathode is greatly enhanced due to its significant tolerance to the volume expansion of MoS3 during the lithiation process, which we ascribe to the flexible 3D framework of PPy NWs, leading to superior cycling performance compared to the bulk-MoS3/NF reference. Eliminating the interference of binder and carbon additives, the evolution of the chemical and electronic structure of Mo and S species during the discharge/charge was studied by X-ray absorption near-edge spectroscopy (XANES). The formation of lithium polysulfides was excluded as the driving cathode reaction mechanism, suggesting the great potential of MoS3 as a promising sulfur-equivalent cathode material to evade the shuttle effect for Li-S batteries. The present study successfully demonstrates the importance of structural design of freestanding electrode enhancing the cycling performances and revealing the corresponding mechanisms.

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Energy & Environmental Materials
Article number: e12539

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Cite this article:
Yu H, Siebert A, Mei S, et al. Electrochemical Realization of 3D Interconnected MoS3/PPy Nanowire Frameworks as Sulfur-Equivalent Cathode Materials for Li-S Batteries. Energy & Environmental Materials, 2024, 7(2): e12539. https://doi.org/10.1002/eem2.12539

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Received: 22 June 2022
Revised: 14 September 2022
Published: 25 September 2022
© 2022 The Authors.

This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.