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通过卤化物固态电解质涂层工程化高压尖晶石LiNiMnO的阴极-电解质界面

Engineering Cathode-Electrolyte Interface of High-Voltage Spinel LiNiMnO via Halide Solid-State Electrolyte Coating.

作者信息

Huang Jheng-Yi, Cheng Ching-Yun, Lai Yan-Ming, Iputera Kevin, Chung Ren-Jei, Liu Ru-Shi

机构信息

Department of Chemistry and Advanced Research Center for Green Materials Science and Technology, National Taiwan University, Taipei 106, Taiwan.

Department of Chemical Engineering and Biotechnology, National Taipei University of Technology, Taipei 106, Taiwan.

出版信息

ACS Appl Mater Interfaces. 2023 Aug 30;15(34):40648-40655. doi: 10.1021/acsami.3c08517. Epub 2023 Aug 16.

Abstract

The high-voltage spinel LiNiMnO (LNMO) cathode material with high energy density, low cost, and excellent rate capability has grabbed the attention of the field. However, a high-voltage platform at 4.7 V causes severe oxidative side reactions when in contact with the organic electrolyte, leading to poor electrochemical performance. Furthermore, the contact between the liquid electrolyte and LNMO leads to Mn dissolution during cycles. In this work, we applied the sol-gel method to prepare LiInCl-coated LNMO (LIC@LNMO) to address the mentioned problems of LNMO. By introducing a protective layer of halide-type solid-state electrolyte on LNMO, we can prevent direct contact between LNMO and electrolyte while maintaining good ionic conductivity. Thus, we could demonstrate that 5 wt % LIC@LNMO exhibited a good cycle performance with a Coulombic efficiency of 99% and a capacity retention of 80% after the 230th cycle at the 230th cycle at 1C at room temperature.

摘要

具有高能量密度、低成本和优异倍率性能的高压尖晶石LiNiMnO(LNMO)正极材料引起了该领域的关注。然而,4.7 V的高压平台在与有机电解质接触时会引发严重的氧化副反应,导致电化学性能不佳。此外,液体电解质与LNMO之间的接触会导致循环过程中Mn溶解。在这项工作中,我们应用溶胶-凝胶法制备了LiInCl包覆的LNMO(LIC@LNMO),以解决LNMO上述问题。通过在LNMO上引入卤化物型固态电解质保护层,我们可以防止LNMO与电解质直接接触,同时保持良好的离子导电性。因此,我们可以证明,5 wt%的LIC@LNMO在室温下以1C倍率进行第230次循环后,表现出良好的循环性能,库仑效率为99%,容量保持率为80%。

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