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用于全气候500 Wh/kg锂金属电池的耐温弱溶剂化电解质的数据辅助设计

Data-Assisted Design of Temperature-Resistant Weakly Solvating Electrolyte for All-Climate 500 Wh/kg Lithium-Metal Batteries.

作者信息

Li Zhongzhe, Wang Weiyu, Zhang Wanyao, Chen Yufang, Yun Xiaoru, Teng Tao, Zheng Chunman, Xu Ligang, Tang Mingxue, Zhao Yun, Li Baohua, Liu Jilei, Xiao Peitao

机构信息

College of Aerospace Science and Engineering, National University of Defense Technology, Changsha, Hunan 410073, China.

School of Advanced Materials, Shenzhen Graduate School, Peking University, Shenzhen 518055, China.

出版信息

ACS Nano. 2025 Jul 1;19(25):23294-23305. doi: 10.1021/acsnano.5c06219. Epub 2025 Jun 18.

Abstract

Temperature-resistant weakly solvating electrolytes (TRWSEs) are indispensable for lithium-metal batteries with ultrahigh energy density (≥450 Wh kg) and excellent temperature adaptability (±70 °C). However, how to design ideal TRWSEs efficiently and decipher their evolution at different temperatures is still a great challenge. Herein, via a data-driven strategy, a TRWSE with a melting point as low as -136 °C was elaborately designed. More importantly, the evolution of the TRWSE from intrinsic solvation structures to interphase constructions and to lithium-metal deposition at different temperatures was investigated. Intriguingly, the anion-rich solvation structures in this TRWSE, the anion-derived electrolyte-electrode interphases, and deposited lithium are all temperature-insensitive, especially at low temperatures. Consequently, lithium dendrites are effectively suppressed even at -30 °C with a high Coulombic efficiency of 98.2%. NCM811||Li cells exhibit highly enhanced cycling stability with a capacity retention of almost 100% after 300 cycles at -30 °C. Moreover, 8.5 Ah pouch cells, with a high energy density of 507 Wh kg and an ultrawide operating temperature of 140 °C, still deliver a capacity retention of 92.3% at temperatures as low as -70 °C, which can discharge even at -110 °C, demonstrating their huge potential at ultralow temperatures.

摘要

耐高温弱溶剂化电解质(TRWSEs)对于具有超高能量密度(≥450 Wh kg)和出色温度适应性(±70°C)的锂金属电池来说不可或缺。然而,如何高效设计理想的TRWSEs并解析其在不同温度下的演变仍是一项巨大挑战。在此,通过数据驱动策略,精心设计出一种熔点低至-136°C的TRWSE。更重要的是,研究了该TRWSE在不同温度下从固有溶剂化结构到界面构建再到锂金属沉积的演变过程。有趣的是,这种TRWSE中富含阴离子的溶剂化结构、源自阴离子的电解质-电极界面以及沉积的锂对温度均不敏感,尤其是在低温下。因此,即使在-30°C时,锂枝晶也能得到有效抑制,库仑效率高达98.2%。NCM811||Li电池在-30°C下循环300次后容量保持率几乎达到100%,循环稳定性显著增强。此外,8.5 Ah软包电池具有507 Wh kg的高能量密度和140°C的超宽工作温度,在低至-70°C的温度下仍能保持92.3%的容量保持率,甚至在-110°C时也能放电,展现出其在超低温下的巨大潜力。

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