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通过离子偶极相互作用调节界面溶剂化以用于低温和高压锂电池。

Modulating Interfacial Solvation via Ion Dipole Interactions for Low-Temperature and High-Voltage Lithium Batteries.

作者信息

Liang Ping, Li Jinhan, Dong Yang, Wang Zhaodong, Ding Guoyu, Liu Kuiming, Xue Linlin, Cheng Fangyi

机构信息

State Key Laboratory of Advanced Chemical Power Sources, Engineering Center on High-efficiency Energy Storage (Ministry of Education), Key Laboratory of Advanced Energy Materials (Ministry of Education), Frontiers Science Center for New Organic Matter (Ministry of Education), College of Chemistry, Nankai University, Tianjin, 300071, China.

Haihe Laboratory of Sustainable Chemical Transformations, Tianjin, 300192, China.

出版信息

Angew Chem Int Ed Engl. 2025 Jan 21;64(4):e202415853. doi: 10.1002/anie.202415853. Epub 2024 Nov 19.

Abstract

Extending the stability of ether solvents is pivotal for developing low-temperature and high-voltage lithium batteries. Herein, we elucidate the oxidation behavior of tetrahydrofuran with ternary BF , PF and difluoro (oxalato) borate anions and the evolution of interfacial solvation environment. Combined in situ analyses and computations illustrate that the ion dipole interactions and the subsequent formation of ether-Li-anion complexes in electrolyte rearrange the oxidation order of solvated species, which enhances the electrochemical stability of ether solvent. Furthermore, preferential absorption of anions on the surface of high-voltage cathode favors the formation of a solvent-deficient electric double layer and an anti-oxidation cathode electrolyte interphase, inhibiting the decomposition of tetrahydrofuran. Remarkably, the formulated electrolyte based on ternary anion and tetrahydrofuran solvent endows the LiNiCoMnO cathode with considerable rate capability of 5.0 C and high capacity retention of 93.12 % after 200 cycles. At a charging voltage of 4.5 V, the Li||LiNiCoMnO cells deliver Coulombic efficiency above 99 % at both 25 and -30 °C.

摘要

扩展醚类溶剂的稳定性对于开发低温和高压锂电池至关重要。在此,我们阐明了四氢呋喃与三元BF 、PF 以及二氟(草酸根)硼酸根阴离子的氧化行为以及界面溶剂化环境的演变。结合原位分析和计算表明,电解质中的离子偶极相互作用以及随后醚-Li-阴离子络合物的形成重新排列了溶剂化物种的氧化顺序,从而提高了醚类溶剂的电化学稳定性。此外,阴离子在高压阴极表面的优先吸附有利于形成贫溶剂双电层和抗氧化阴极电解质界面,抑制四氢呋喃的分解。值得注意的是,基于三元阴离子和四氢呋喃溶剂配制的电解质赋予LiNiCoMnO阴极相当可观的5.0 C倍率性能以及200次循环后93.12 %的高容量保持率。在4.5 V的充电电压下,Li||LiNiCoMnO电池在25和-30 °C时的库仑效率均高于99 %。

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