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用于宽温度固态锂电池的富含缺陷的高性能硒化硒复合阴极

High-Performance Se-S Composite Cathode Rich in Defects for Wide-Temperature Solid-State Lithium Batteries.

作者信息

Shi Xiaomeng, Zeng Zhichao, Wen Yongqing, Zhang Hongtu, Zhang Yabin, Du Yaping

机构信息

Tianjin Key Lab for Rare Earth Materials and Applications Center for Rare Earth and Inorganic Functional Materials Smart Sensing Interdisciplinary Science Center School of Materials Science and Engineering National Institute for Advanced Materials Nankai University Tianjin 300350 China.

Baotou Research Institute of Rare Earths Rare Earth Advanced Materials Technology Innovation Center Baotou 014010 China.

出版信息

Small Sci. 2023 Nov 20;3(12):2300134. doi: 10.1002/smsc.202300134. eCollection 2023 Dec.

Abstract

All-solid-state lithium batteries (ASSLBs) are a research hotspot for their superior safety. The solid electrolytes (SEs) are key components in ASSLBs, and the emerging rare-earth halide SEs (RE-HSEs) are valued for their comprehensive performances of good ionic conductivity, electrochemical stability, and deformability. In addition, cathode materials can influence the properties of ASSLBs, and sulfur (S) attracts much attention due to the lower toxicity and much higher energy density compared with commercial oxide cathodes. However, the S possesses poor electronic conductivity, which can be improved by the introduction of selenium (Se) with much higher electronic conductivity. In this work, a series of Se S composites is synthesized by a melting method. Due to the introduction of Se and the enriched defects from the melting process, the electronic and ionic conductivities of Se S are improved. After application in ASSLBs based on RE-HSE LiYBr, the Se S materials exhibit good performances with low polarizations, good cycling stabilities, and excellent rate properties at room temperature. Moreover, the assembled solid batteries can realize stable cycling performance (100 cycles) at low temperature (-30 °C) and a normal discharge-charge process at high temperature (120 °C).

摘要

全固态锂电池(ASSLBs)因其卓越的安全性而成为研究热点。固体电解质(SEs)是全固态锂电池的关键组件,新兴的稀土卤化物固体电解质(RE-HSEs)因其具有良好的离子导电性、电化学稳定性和可变形性等综合性能而受到重视。此外,正极材料会影响全固态锂电池的性能,与商用氧化物正极相比,硫(S)因其较低的毒性和更高的能量密度而备受关注。然而,硫的电子导电性较差,可通过引入电子导电性高得多的硒(Se)来改善。在这项工作中,通过熔融法合成了一系列硒硫复合材料。由于硒的引入以及熔融过程中产生的丰富缺陷,硒硫的电子导电性和离子导电性均得到提高。将其应用于基于稀土卤化物固体电解质LiYBr的全固态锂电池后,硒硫材料在室温下表现出低极化、良好的循环稳定性和优异的倍率性能。此外,组装的固态电池在低温(-30°C)下可实现稳定的循环性能(100次循环),在高温(120°C)下可实现正常的充放电过程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0c21/11935919/371866c3c2fc/SMSC-3-2300134-g004.jpg

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