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High-Reaction Kinetics SexS1–x Cathodes for All-Solid-State Lithium–Sulfur Batteries.

Authors :
Wu, Rui
Fang, Ruyi
Lu, Chengwei
Gan, Yongping
He, Xinping
Xu, Jianping
Jin, Zheyu
Zhang, Wenkui
Xia, Yang
Source :
Journal of Electronic Materials; Jun2024, Vol. 53 Issue 6, p2833-2841, 9p
Publication Year :
2024

Abstract

All-solid-state lithium–sulfur batteries are considered one of the most promising candidates for energy storage devices due to their high energy density and safety. However, the poor electron transport of sulfur-based cathodes significantly reduces their reaction kinetics, resulting in low utilization efficiency and subpar rate performance. Herein, leveraging the similar chemical properties of sulfur and selenium, we uniformly deposit Se<subscript>x</subscript>S<subscript>1−x</subscript> (x = 0–0.3) solid solutions with different selenium content on the surface of active carbon via a facile melt-diffusion method to achieve Se<subscript>x</subscript>S<subscript>1−x</subscript>@AC (x = 0–0.3) composite materials. The introduction of selenium effectively enhances the lithium-ion diffusion coefficient of the Se<subscript>x</subscript>S<subscript>1−x</subscript>@AC (x = 0–0.3) cathodes, and improves the stability of the cathode/solid electrolyte interface. With the increase in selenium content, the reaction kinetics of the Se<subscript>x</subscript>S<subscript>1−x</subscript>@AC (x = 0–0.3) cathodes are altered. Specifically, the average lithium-ion diffusion coefficients for the S@AC and Se<subscript>0.2</subscript>S<subscript>0.8</subscript>@AC cathodes are 6.11 × 10<superscript>−14</superscript> and 1.65 × 10<superscript>−13</superscript> cm<superscript>2</superscript> s<superscript>−1</superscript>, respectively, showing a twofold increase. Concurrently, the Se<subscript>0.2</subscript>S<subscript>0.8</subscript>@AC cathode exhibits higher discharge capacity (698.8 mA h g<superscript>−1</superscript>) than that of the S@AC cathode (501.3 mA h g<superscript>−1</superscript>) at 1 A g<superscript>−1</superscript>. Surprisingly, even when the mass loading increases to 8.85 mg cm<superscript>−2</superscript>, the Se<subscript>0.2</subscript>S<subscript>0.8</subscript>@AC cathode still shows superior cycling stability, which is attributed to the fast ionic/electronic transport pathways within the cathode. Moreover, the Se<subscript>0.2</subscript>S<subscript>0.8</subscript>@AC cathode maintains good physical contact at the cathode/SE interface after cycling. In all-solid-state lithium–sulfur batteries, the introduction of selenium in the sulfur cathode enhances reaction kinetics (1.65 × 10<superscript>−13</superscript> cm<superscript>2</superscript> s<superscript>−1</superscript>), provides additional reactive sites, and significantly improves the electrochemical performance of Se<subscript>0.2</subscript>S<subscript>0.8</subscript>@AC even with high mass loading (8.85 mg cm<superscript>−2</superscript>). [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
03615235
Volume :
53
Issue :
6
Database :
Complementary Index
Journal :
Journal of Electronic Materials
Publication Type :
Academic Journal
Accession number :
178046899
Full Text :
https://doi.org/10.1007/s11664-024-11071-3