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实现多硫化锂向硫化锂瞬间转化的电子与离子共导电催化剂。

Electron and Ion Co-Conductive Catalyst Achieving Instant Transformation of Lithium Polysulfide towards Li S.

作者信息

Hao Xiaoge, Ma Jiabin, Cheng Xing, Zhong GuiMing, Yang Jin-Lin, Huang Ling, Ling Huajin, Lai Chen, Lv Wei, Kang Feiyu, Sun Xueliang, He Yan-Bing

机构信息

Shenzhen Geim Graphene Center, Institute of Materials Research (iMR), Tsinghua Shenzhen International Graduate School, Tsinghua University, Shenzhen, 518055, P. R. China.

Laboratory of Advanced Materials, School of Materials Science and Engineering, Tsinghua University, Beijing, 100084, P. R. China.

出版信息

Adv Mater. 2021 Dec;33(52):e2105362. doi: 10.1002/adma.202105362. Epub 2021 Oct 17.

Abstract

Most of the catalysts in lithium sulfur (Li-S) batteries present low electronic conductivity and the lithium polysulfides (LiPSs) must diffuse onto the surface of the carbon materials to achieve their conversion reaction. It is a significant challenge to achieve the instantaneous transformation of LiPSs to Li S in Li-S batteries to suppress the shuttle effect of LiPSs. Herein, a unique electron and ion co-conductive catalyst of carbon-coated Li Al Ti (PO ) (C@LATP) is developed, which not only possesses strong adsorption to LiPSs, but, more importantly, also promotes the instantaneous conversion reaction of LiPSs to Li S. The C@LATP nanoparticles as catalytic active sites can synchronously and efficiently provide both Li ions and electrons to facilitate the conversion reaction of LiPSs. The conversion reaction path of LiPSs using C@LATP changes from traditional "adsorption-diffusion-conversion" to novel "adsorption-conversion," which effectively lowers the decomposition barrier of Li S and promotes faster conversion of LiPSs. The shuttle effect of LiPSs is considerably suppressed and utilization of sulfur is greatly improved. The Li-S batteries using C@LATP present excellent rate, cycling, and self-discharge properties. This work highlights the significance of electron and ion co-conductive solid-state electrolytes for the instantaneous transformation of LiPSs in advanced Li-S batteries.

摘要

锂硫(Li-S)电池中的大多数催化剂电子导电性较低,多硫化锂(LiPSs)必须扩散到碳材料表面才能实现其转化反应。在Li-S电池中实现LiPSs瞬间转化为Li₂S以抑制LiPSs的穿梭效应是一项重大挑战。在此,开发了一种独特的碳包覆Li₃AlTi(PO₄)₃(C@LATP)电子和离子共导电催化剂,它不仅对LiPSs具有强吸附性,更重要的是,还能促进LiPSs瞬间转化为Li₂S的反应。作为催化活性位点的C@LATP纳米颗粒可以同步且高效地提供锂离子和电子,以促进LiPSs的转化反应。使用C@LATP时LiPSs的转化反应路径从传统的“吸附-扩散-转化”转变为新型的“吸附-转化”,有效降低了Li₂S的分解势垒,促进了LiPSs更快地转化。LiPSs的穿梭效应得到显著抑制,硫的利用率大大提高。使用C@LATP的Li-S电池具有优异的倍率、循环和自放电性能。这项工作突出了电子和离子共导电固态电解质对于先进Li-S电池中LiPSs瞬间转化的重要性。

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