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用于超长效锂金属电池的晶体平面可控锂金属阳极的可扩展定制

Scalable Customization of Crystallographic Plane Controllable Lithium Metal Anodes for Ultralong-Lasting Lithium Metal Batteries.

作者信息

Tan Jian, Ma Longli, Yi Pengshu, Wang Yuan, Li Zhiheng, Fang Zhan, Li Xuanyang, He Shan, Wang Xuefeng, Ye Mingxin, Shen Jianfeng

机构信息

Institute of Special Materials and Technology, Fudan University, Shanghai, 200433, China.

Department of Materials Science, Fudan University, Shanghai, 200433, China.

出版信息

Adv Mater. 2024 Jul;36(30):e2403570. doi: 10.1002/adma.202403570. Epub 2024 May 11.

Abstract

A formidable challenge to achieve the practical applications of rechargeable lithium (Li) metal batteries (RLMBs) is to suppress the uncontrollable growth of Li dendrites. One of the most effective solutions is to fabricate Li metal anodes with specific crystal plane, but still lack of a simple and high-efficient approach. Herein, a facile and controllable way for the scalable customization of polished Li metal anodes with highly preferred (110) and (200) crystallographic orientation (donating as polished Li(110) and polished Li(200), respectively) by regulating the times of accumulative roll bonding, is reported. According to the inherent characteristics of polished Li(110)/Li(200), the influence of Li atomic structure on the electrochemical performance of RLMBs is deeply elucidated by combining theoretical calculations with relative experimental proofs. In particular, a polished Li(110) crystal plane is demonstrated to induce Li uniform deposition, promoting the formation of flat and dense Li deposits. Impressively, the polished Li(110)||LiFePO full cells exhibit unprecedented cycling stability with 10 000 cycles at 10 C almost without capacity degradation, indicating the great potential application prospect of such textured Li metal. More valuably, this work provides an important reference for low-cost, continued, and large-scale production of Li metal anodes with highly preferred crystal orientation through roll-to-roll manufacturability.

摘要

实现可充电锂金属电池(RLMBs)实际应用的一个巨大挑战是抑制锂枝晶的不可控生长。最有效的解决方案之一是制造具有特定晶面的锂金属负极,但仍缺乏一种简单高效的方法。在此,报道了一种通过调节累积轧制结合次数来可扩展定制具有高度择优(110)和(200)晶体取向的抛光锂金属负极(分别称为抛光Li(110)和抛光Li(200))的简便可控方法。根据抛光Li(110)/Li(200)的固有特性,通过将理论计算与相关实验证据相结合,深入阐明了锂原子结构对RLMBs电化学性能的影响。特别是,证明了抛光的Li(110)晶面可诱导锂均匀沉积,促进形成平整致密的锂沉积物。令人印象深刻的是,抛光Li(110)||LiFePO全电池在10 C下循环10000次时表现出前所未有的循环稳定性,几乎没有容量衰减,表明这种织构化锂金属具有巨大的潜在应用前景。更有价值的是,这项工作为通过卷对卷制造能力低成本、连续且大规模生产具有高度择优晶体取向的锂金属负极提供了重要参考。

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