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界面摩擦助力用于锂金属电池的厚度≤20μm的独立式锂带。

Interfacial friction enabling ≤ 20 μm thin free-standing lithium strips for lithium metal batteries.

作者信息

Huang Shaozhen, Wu Zhibin, Johannessen Bernt, Long Kecheng, Qing Piao, He Pan, Ji Xiaobo, Wei Weifeng, Chen Yuejiao, Chen Libao

机构信息

State Key Laboratory of Powder Metallurgy, Central South University, Changsha, Hunan, China.

Australian Synchrotron, ANSTO, Clayton, VIC, 3168, Australia.

出版信息

Nat Commun. 2023 Sep 14;14(1):5678. doi: 10.1038/s41467-023-41514-0.

Abstract

A practical high-specific-energy Li metal battery requires thin (≤20 μm) and free-standing Li metal anodes, but the low melting point and strong diffusion creep of lithium metal impede their scalable processing towards thin-thickness and free-standing architecture. In this paper, thin (5 to 50 μm) and free-standing lithium strips were achieved by mechanical rolling, which is determined by the in situ tribochemical reaction between lithium and zinc dialkyldithiophosphate (ZDDP). A friction-induced organic/inorganic hybrid interface (~450 nm) was formed on Li with an ultra-high hardness (0.84 GPa) and Young's modulus (25.90 GPa), which not only enables the scalable process mechanics of thin lithium strips but also facilitates dendrite-free lithium metal anodes by inhibiting dendrite growth. The rolled lithium anode exhibits a prolonged cycle lifespan and high-rate cycle stability (in excess of more than 1700 cycles even at 18.0 mA cm and 1.5 mA cm at 25 °C). Meanwhile, the LiFePO (with single-sided load 10 mg/cm) ||Li@ZDDP full cell can last over 350 cycles with a high-capacity retention of 82% after the formation cycles at 5 C (1 C = 170 mA/g) and 25 °C. This work provides a scalable approach concerning tribology design for producing practical thin free-standing lithium metal anodes.

摘要

实用的高比能锂金属电池需要薄(≤20μm)且自支撑的锂金属负极,但锂金属的低熔点和强烈的扩散蠕变阻碍了其向薄厚度和自支撑结构的可扩展加工。本文通过机械轧制实现了薄(5至50μm)且自支撑的锂带,这是由锂与二烷基二硫代磷酸锌(ZDDP)之间的原位摩擦化学反应决定的。在锂表面形成了一个摩擦诱导的有机/无机混合界面(~450nm),其具有超高硬度(0.84GPa)和杨氏模量(25.90GPa),这不仅实现了薄锂带的可扩展加工力学,还通过抑制枝晶生长促进了无枝晶锂金属负极的形成。轧制锂负极表现出延长的循环寿命和高倍率循环稳定性(即使在25°C下18.0mA/cm²和1.5mA/cm²的电流密度下也超过1700次循环)。同时,LiFePO₄(单面负载10mg/cm²)||Li@ZDDP全电池在5C(1C = 170mA/g)和25°C下形成循环后,能够持续超过350次循环,容量保持率高达82%。这项工作提供了一种关于摩擦学设计的可扩展方法,用于生产实用的薄自支撑锂金属负极。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/682a/10502130/cd1f5ce663e5/41467_2023_41514_Fig1_HTML.jpg

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