Scalable integrated multilayer anode structure for stable lithium accommodation and enhanced cycling performance in lithium metal batteries

IF 8.1 2区 工程技术 Q1 CHEMISTRY, PHYSICAL
Taejun Kim, Suyeon Baek, Eunji Kim, Namhyeong Kim, Soyeong Choi, Yongseon Kim
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引用次数: 0

Abstract

The lithium metal anode (LMA) typically undergoes non-uniform lithium plating/stripping processes, causing the plated lithium to grow dendritically, and also suffers from significant variations in electrode thickness. This study addresses the technical challenges of lithium metal anodes by introducing a current collector/dual additives/nylon mesh spacer integrated multilayer anode structure. In this anode structure, the nylon mesh spacer provides lithium accommodation space within the mesh internal space, suppressing thickness variations in the lithium layer regardless of its plated or stripped state. Simultaneously, the two types of additives integrated into the anode structure serve a dual function of promoting uniform lithium plating and facilitating the formation of a stable Li-electrolyte interface, enhancing the operational performance of the LMA even when a carbonate-based ester electrolyte is used. Furthermore, the multilayer anode structure outperformed the commercial graphite anode in capacity, rapid-charging, and cycling operations. The anode can be fabricated with low-cost materials and scalable processes, allowing its potential application in commercial lithium secondary batteries.
锂金属阳极(LMA)通常会经历不均匀的锂电镀/剥离过程,导致电镀的锂呈树枝状生长,而且电极厚度也会出现显著变化。本研究通过引入集流器/双添加剂/尼龙网隔层集成多层阳极结构,解决了锂金属阳极的技术难题。在这种阳极结构中,尼龙网间隔物在网状内部空间提供了锂的容纳空间,从而抑制了锂层厚度的变化,无论其处于电镀或剥离状态。同时,集成到阳极结构中的两种添加剂具有双重功能,既能促进锂镀层的均匀性,又能促进形成稳定的锂电解质界面,即使在使用碳酸酯类电解质的情况下,也能提高 LMA 的工作性能。此外,多层阳极结构在容量、快速充电和循环操作方面都优于商用石墨阳极。这种负极可以用低成本材料和可扩展工艺制作,因此有可能应用于商用锂二次电池。
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来源期刊
Journal of Power Sources
Journal of Power Sources 工程技术-电化学
CiteScore
16.40
自引率
6.50%
发文量
1249
审稿时长
36 days
期刊介绍: The Journal of Power Sources is a publication catering to researchers and technologists interested in various aspects of the science, technology, and applications of electrochemical power sources. It covers original research and reviews on primary and secondary batteries, fuel cells, supercapacitors, and photo-electrochemical cells. Topics considered include the research, development and applications of nanomaterials and novel componentry for these devices. Examples of applications of these electrochemical power sources include: • Portable electronics • Electric and Hybrid Electric Vehicles • Uninterruptible Power Supply (UPS) systems • Storage of renewable energy • Satellites and deep space probes • Boats and ships, drones and aircrafts • Wearable energy storage systems
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