Interface Engineering via Manipulating Solvation Chemistry for Liquid Lithium-Ion Batteries Operated≥100 °C.

IF 16.1 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Hongjing Gao, Yufang Chen, Tao Teng, Xiaoru Yun, Di Lu, Guangmin Zhou, Yun Zhao, Baohua Li, Xing Zhou, Chunman Zheng, Peitao Xiao
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Abstract

High-performance and temperature-resistant lithium-ion batteries (LIBs), which are able to operate at elevated temperatures (i.e., >60 °C) are highly demanded in various fields, especially in military or aerospace exploration. However, their applications were largely impeded by the poor electrochemical performance and unsatisfying safety issues, which were induced by the severe side reactions between electrolytes and electrodes at high temperatures. Herein, with the synergetic effects of solvation chemistry and functional additive in the elaborately designed weakly solvating electrolyte, a unique robust organic/inorganic hetero-interphase, composed of gradient F, B-rich inorganic components and homogeneously distributed Si-rich organic components, was successfully constructed on both cathodes and anodes, which would effectively inhibit the constant decomposition of electrolytes and dissolution of transition metal ions, thus highly enhancing the high-temperature electrochemical performance. As a result, both cathodes and anodes, without compromising their low-temperature performance, can operate at temperatures ≥100 °C, with excellent capacity retentions of 96.1 % after 500 cycles and 93.5 % after ≥200 cycles, respectively, at 80 °C. Ah-level LiCoO2||graphite full cells with a cut-off voltage of 4.3 V also exhibited superior temperature-resistance with a capacity retention of 89.9 % at temperature as high as 120 °C. Moreover, the fully charged pouch cells exhibited highly enhanced safety, demonstrating their potentials in practical applications at ultrahigh temperatures.

通过操纵溶解化学,为工作温度≥ 100 °C 的液态锂离子电池设计界面工程。
能够在高温(即 >60 °C)条件下工作的高性能耐高温锂离子电池(LIBs)在各个领域,特别是军事或航空航天探索领域的需求量很大。然而,由于电解质和电极在高温下会发生严重的副反应,导致电化学性能不佳和安全性不高,从而阻碍了它们的应用。在此,利用精心设计的弱溶解性电解质中的溶解化学和功能添加剂的协同效应,成功地在阴极和阳极上构建了一种独特的、由梯度富F、富B无机成分和均匀分布的富Si有机成分组成的坚固的有机/无机异质相,可有效抑制电解质的不断分解和过渡金属离子的溶解。因此,阴极和阳极在不影响其低温性能的情况下,都能在≥100 ℃的温度下工作,在 80 ℃的温度下,500 次循环后的容量保持率为 96.1%,≥200 次循环后的容量保持率为 93.5%。截止电压为 4.3 V 的 Ah 级钴酸锂石墨全电池也表现出卓越的耐温性,在高达 120 ℃ 的温度下容量保持率为 89.9%。此外,充满电的袋装电池还表现出更高的安全性,证明了它们在超高温条件下的实际应用潜力。
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来源期刊
CiteScore
26.60
自引率
6.60%
发文量
3549
审稿时长
1.5 months
期刊介绍: Angewandte Chemie, a journal of the German Chemical Society (GDCh), maintains a leading position among scholarly journals in general chemistry with an impressive Impact Factor of 16.6 (2022 Journal Citation Reports, Clarivate, 2023). Published weekly in a reader-friendly format, it features new articles almost every day. Established in 1887, Angewandte Chemie is a prominent chemistry journal, offering a dynamic blend of Review-type articles, Highlights, Communications, and Research Articles on a weekly basis, making it unique in the field.
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