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常见阴极材料在电解质中过渡金属溶解的物种形成

Speciation of Transition Metal Dissolution in Electrolyte from Common Cathode Materials.

作者信息

Rynearson Leah, Antolini Cali, Jayawardana Chamithri, Yeddala Munaiah, Hayes Dugan, Lucht Brett L

机构信息

Department of Chemistry, University of Rhode Island, Kingston, RI-02881, USA.

出版信息

Angew Chem Int Ed Engl. 2024 Jan 25;63(5):e202317109. doi: 10.1002/anie.202317109. Epub 2023 Dec 21.

Abstract

Significant capacity loss has been observed across extended cycling of lithium-ion batteries cycled to high potential. One of the sources of capacity fade is transition metal dissolution from the cathode active material, ion migration through the electrolyte, and deposition on the solid-electrolyte interphase on the anode. While much research has been conducted on the oxidation state of the transition metal in the cathode active material or deposited on the anode, there have been limited investigations of the oxidation state of the transition metal ions dissolved in the electrolyte. In this work, X-ray absorption spectroscopy has been performed on electrolytes extracted from cells built with four different cathode active materials (LiMn O (LMO), LiNi Mn O (LNMO), LiNi Mn Co O (NMC811), and (x Li MnO *(1-x) LiNi Mn Co O , with a+b+c=1) (LMRNMC)) that were cycled at either high or standard potentials to determine the oxidation state of Mn and Ni in solution. Inductively coupled plasma-mass spectrometry has been performed on the anodes from these cells to determine the concentration of deposited transition metal ions. While transition metal ions were found dissolved in all electrolytes, the oxidation state(s) of Mn and Ni were determined to be dependent on the cathode material and independent of cycling potential.

摘要

在锂离子电池循环至高电位的长时间循环过程中,已观察到显著的容量损失。容量衰减的一个来源是过渡金属从正极活性材料中溶解、通过电解质的离子迁移以及在负极固体电解质界面上的沉积。虽然已经对正极活性材料中或沉积在负极上的过渡金属的氧化态进行了大量研究,但对溶解在电解质中的过渡金属离子的氧化态的研究却很有限。在这项工作中,对从使用四种不同正极活性材料(LiMn₂O₄(LMO)、LiNi₀.₅Mn₀.₅O₂(LNMO)、LiNi₀.₈Mn₀.₁Co₀.₁O₂(NMC811)以及(xLi₂MnO₃*(1 - x)LiNi₀.₅Mn₀.₅Co₀.₅O₂,a + b + c = 1)(LMRNMC))构建的电池中提取的电解质进行了X射线吸收光谱分析,以确定溶液中Mn和Ni的氧化态。对这些电池的负极进行了电感耦合等离子体质谱分析,以确定沉积的过渡金属离子的浓度。虽然在所有电解质中都发现了溶解的过渡金属离子,但Mn和Ni的氧化态被确定取决于正极材料,而与循环电位无关。

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