Toward Dendrite-Free Metallic Lithium Anodes: From Structural Design to Optimal Electrochemical Diffusion Kinetics

阳极 材料科学 锂(药物) 电解质 枝晶(数学) 电化学 扩散 纳米技术 化学工程 电池(电) 电极 化学 热力学 物理 工程类 内分泌学 物理化学 功率(物理) 医学 数学 几何学
作者
Jian Wang,Linge Li,Huimin Hu,Hongfei Hu,Qinghua Guan,Min Huang,Lujie Jia,Henry Adenusi,Kun Tian,Jing Zhang,Stefano Passerini,Hongzhen Lin
出处
期刊:ACS Nano [American Chemical Society]
卷期号:16 (11): 17729-17760 被引量:45
标识
DOI:10.1021/acsnano.2c08480
摘要

Lithium metal anodes are ideal for realizing high-energy-density batteries owing to their advantages, namely high capacity and low reduction potentials. However, the utilization of lithium anodes is restricted by the detrimental lithium dendrite formation, repeated formation and fracturing of the solid electrolyte interphase (SEI), and large volume expansion, resulting in severe "dead lithium" and subsequent short circuiting. Currently, the researches are principally focused on inhibition of dendrite formation toward extending and maintaining battery lifespans. Herein, we summarize the strategies employed in interfacial engineering and current-collector host designs as well as the emerging electrochemical catalytic methods for evolving-accelerating-ameliorating lithium ion/atom diffusion processes. First, strategies based on the fabrication of robust SEIs are reviewed from the aspects of compositional constituents including inorganic, organic, and hybrid SEI layers derived from electrolyte additives or artificial pretreatments. Second, the summary and discussion are presented for metallic and carbon-based three-dimensional current collectors serving as lithium hosts, including their functionality in decreasing local deposition current density and the effect of introducing lithiophilic sites. Third, we assess the recent advances in exploring alloy compounds and atomic metal catalysts to accelerate the lateral lithium ion/atom diffusion kinetics to average the spatial lithium distribution for smooth plating. Finally, the opportunities and challenges of metallic lithium anodes are presented, providing insights into the modulation of diffusion kinetics toward achieving dendrite-free lithium metal batteries.
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