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首页> 外文期刊>Advanced Materials >An Electron/Ion Dual-Conductive Alloy Framework for High-Rate and High-Capacity Solid-State Lithium-Metal Batteries
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An Electron/Ion Dual-Conductive Alloy Framework for High-Rate and High-Capacity Solid-State Lithium-Metal Batteries

机译:用于高速率和大容量固态锂金属电池的电子/离子双导电合金框架

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摘要

The solid-state Li battery is a promising energy-storage system that is both safe and features a high energy density. A main obstacle to its application is the poor interface contact between the solid electrodes and the ceramic electrolyte. Surface treatment methods have been proposed to improve the interface of the ceramic electrolytes, but they are generally limited to low-capacity or short-term cycling. Herein, an electron/ion dual-conductive solid framework is proposed by partially dealloying the Li-Mg alloy anode on a garnet-type solid-state electrolyte. The Li-Mg alloy framework serves as a solid electron/ion dual-conductive Li host during cell cycling, in which the Li metal can cycle as a Li-rich or Li-deficient alloy anode, free from interface deterioration or volume collapse. Thus, the capacity, current density, and cycle life of the solid Li anode are improved. The cycle capability of this solid anode is demonstrated by cycling for 500 h at 1 mA cm(-2), followed by another 500 h at 2 mA cm(-2) without short-circuiting, realizing a record high cumulative capacity of 750 mA h cm(-2) for garnet-type all-solid-state Li batteries. This alloy framework with electron/ion dual-conductive pathways creates the possibility to realize high-energy solid-state Li batteries with extended lifespans.
机译:固态锂电池是一种很有前途的储能系统,既安全又具有高能量密度。其应用的主要障碍是固体电极和陶瓷电解质之间的不良界面接触。已经提出了表面处理方法来改善陶瓷电解质的界面,但是它们通常限于低容量或短期循环。在此,提出了通过在石榴石型固态电解质上部分地解除合金化Li-Mg合金阳极而形成的电子/离子双导电固体骨架。 Li-Mg合金骨架在电池循环期间充当固体电子/离子双导电Li主体,其中Li金属可以作为富Li或缺Li合金阳极循环,而不会发生界面变质或体积塌陷。因此,改进了固体锂阳极的容量,电流密度和循环寿命。通过在1 mA cm(-2)下循环500小时,然后在2 mA cm(-2)下又进行500小时而不发生短路,证明了这种固态阳极的循环能力,从而实现了创纪录的750 mA累积容量石榴石型全固态锂电池的h cm(-2)。这种具有电子/离子双传导途径的合金框架为实现具有延长使用寿命的高能固态锂电池提供了可能。

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