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解析尖晶石 LiMnO 的溶胶-凝胶合成机制及其对锂离子电池阴极材料的实际意义:基质级阳离子分布的关键影响。

Unraveling the Mechanism and Practical Implications of the Sol-Gel Synthesis of Spinel LiMnO as a Cathode Material for Li-Ion Batteries: Critical Effects of Cation Distribution at the Matrix Level.

机构信息

Department of Smart Energy and Mechanical Engineering, Gyeongsang National University, Tongyeong-Haeanro 2, Tongyeong 53064, Republic of Korea.

Department of Materials Engineering and Convergence Technology, Gyeongsang National University, Jinju-daero 501, Jinju 52828, Republic of Korea.

出版信息

Molecules. 2023 Apr 15;28(8):3489. doi: 10.3390/molecules28083489.

Abstract

Spinel LiMnO (LMO) is a state-of-the-art cathode material for Li-ion batteries. However, the operating voltage and battery life of spinel LMO needs to be improved for application in various modern technologies. Modifying the composition of the spinel LMO material alters its electronic structure, thereby increasing its operating voltage. Additionally, modifying the microstructure of the spinel LMO by controlling the size and distribution of the particles can improve its electrochemical properties. In this study, we elucidate the sol-gel synthesis mechanisms of two common types of sol-gels (modified and unmodified metal complexes)-chelate gel and organic polymeric gel-and investigate their structural and morphological properties and electrochemical performances. This study highlights that uniform distribution of cations during sol-gel formation is important for the growth of LMO crystals. Furthermore, a homogeneous multicomponent sol-gel, necessary to ensure that no conflicting morphologies and structures would degrade the electrochemical performances, can be obtained when the sol-gel has a polymer-like structure and uniformly bound ions; this can be achieved by using additional multifunctional reagents, namely cross-linkers.

摘要

尖晶石 LiMnO(LMO)是锂离子电池的一种最先进的正极材料。然而,为了将尖晶石 LMO 应用于各种现代技术,需要提高其工作电压和电池寿命。改变尖晶石 LMO 材料的组成会改变其电子结构,从而提高其工作电压。此外,通过控制颗粒的大小和分布来改变尖晶石 LMO 的微结构可以改善其电化学性能。在本研究中,我们阐明了两种常见的溶胶-凝胶(改性和未改性金属配合物)-螯合凝胶和有机聚合物凝胶的溶胶-凝胶合成机制,并研究了它们的结构和形态特性以及电化学性能。本研究强调,在溶胶-凝胶形成过程中,阳离子的均匀分布对于 LMO 晶体的生长很重要。此外,当溶胶-凝胶具有聚合物状结构且离子均匀结合时,可以获得均匀的多组分溶胶-凝胶,以确保没有相互冲突的形态和结构会降低电化学性能;这可以通过使用额外的多功能试剂,即交联剂来实现。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/385e/10142034/fd7e1e51de4d/molecules-28-03489-g001.jpg

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