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基于阳离子表面活性剂的电解质添加剂,通过疏锂排斥机制实现均匀锂沉积

Cationic Surfactant-Based Electrolyte Additives for Uniform Lithium Deposition via Lithiophobic Repulsion Mechanisms.

作者信息

Dai Hongliu, Xi Kai, Liu Xin, Lai Chao, Zhang Shanqing

机构信息

School of Chemistry and Materials Science , Jiangsu Normal University , Xuzhou , Jiangsu 221116 , China.

Department of Materials Science and Metallurgy , University of Cambridge , Cambridge CB3 0FS , U.K.

出版信息

J Am Chem Soc. 2018 Dec 19;140(50):17515-17521. doi: 10.1021/jacs.8b08963. Epub 2018 Dec 11.

Abstract

Lithium metal is among the most promising anode materials for high-energy batteries due to its high theoretical capacity and lowest electrochemical potential. However, dendrite formation is a major challenge, which can result in fire and explosion of the batteries. Herein, we report on hexadecyl trimethylammonium chloride (CTAC) as an electrolyte additive that can suppress the growth of lithium dendrites by lithiophobic repulsion mechanisms. During the lithium plating process, cationic surfactant molecules can aggregate around protuberances via electrostatic attraction, forming a nonpolar lithiophobic protective outer layer, which drives the deposition of lithium ions to adjacent regions to produce dendrite-free uniform Li deposits. Thus, an excellent cycle of 300 h at 1.0 mA cm and rate performance up to 4 mA cm are available safely in symmetric Li|Li cells. In particular, significantly enhanced cycle and rate performance were achieved when the electrolyte with CTAC additives was used in lithium-sulfur and Li|LiNiCoMnO full cells. The effects of carbon chains, anions of surfactant, and electrostatic repulsion on the deposition of lithium anodes are reported. This work advances research in inhibiting Li dendrite growth with a new electrolyte additive based on cationic surfactants.

摘要

锂金属因其高理论容量和最低电化学势,成为高能电池中最具前景的负极材料之一。然而,枝晶形成是一个重大挑战,可能导致电池起火和爆炸。在此,我们报道了十六烷基三甲基氯化铵(CTAC)作为一种电解质添加剂,它可以通过疏锂排斥机制抑制锂枝晶的生长。在锂电镀过程中,阳离子表面活性剂分子可通过静电吸引在凸起周围聚集,形成一个非极性的疏锂保护外层,这促使锂离子沉积到相邻区域,从而产生无枝晶的均匀锂沉积物。因此,在对称的Li|Li电池中,可在1.0 mA cm下安全实现300 h的优异循环,以及高达4 mA cm的倍率性能。特别是,当在锂硫电池和Li|LiNiCoMnO全电池中使用含CTAC添加剂的电解质时,循环和倍率性能得到显著增强。报道了碳链、表面活性剂阴离子以及静电排斥对锂负极沉积的影响。这项工作推动了基于阳离子表面活性剂的新型电解质添加剂抑制锂枝晶生长的研究。

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