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无枝晶钾-氧电池基于液态合金负极。

Dendrite-Free Potassium-Oxygen Battery Based on a Liquid Alloy Anode.

机构信息

Advanced Materials Institute, Graduate School at Shenzhen, Tsinghua University , Shenzhen 518055, China.

School of Materials Science and Engineering, Tsinghua University , Beijing 100084, China.

出版信息

ACS Appl Mater Interfaces. 2017 Sep 20;9(37):31871-31878. doi: 10.1021/acsami.7b08962. Epub 2017 Sep 11.

Abstract

The safety issue caused by the dendrite growth is not only a key research problem in lithium-ion batteries but also a critical concern in alkali metal (i.e., Li, Na, and K)-oxygen batteries where a solid metal is usually used as the anode. Herein, we demonstrate the first dendrite-free K-O battery at ambient temperature based on a liquid Na-K alloy anode. The unique liquid-liquid connection between the liquid alloy and the electrolyte in our alloy anode-based battery provides a homogeneous and robust anode-electrolyte interface. Meanwhile, we manage to show that the Na-K alloy is only compatible in K-O batteries but not in Na-O batteries, which is mainly attributed to the stronger reducibility of potassium and relatively more favorable thermodynamic formation of KO over NaO during the discharge process. It is observed that our K-O battery based on a liquid alloy anode shows a long cycle life (over 620 h) and a low discharge-charge overpotential (about 0.05 V at initial cycles). Moreover, the mechanism investigation into the K-O cell degradation shows that the O crossover effect and the ether-electrolyte instability are the critical problems for K-O batteries. In a word, this study provides a new route to solve the problems caused by the dendrite growth in alkali metal-oxygen batteries.

摘要

枝晶生长引起的安全问题不仅是锂离子电池的关键研究问题,也是碱金属(即 Li、Na 和 K)-氧电池的关键问题,其中通常使用固体金属作为阳极。在此,我们展示了基于液态 Na-K 合金阳极的首个体积无枝晶 K-O 电池。在我们基于合金阳极的电池中,液态合金和电解质之间独特的液-液连接提供了均匀且坚固的阳极-电解质界面。同时,我们设法表明,Na-K 合金仅适用于 K-O 电池而不适用于 Na-O 电池,这主要归因于钾的还原能力更强,以及在放电过程中 KO 的热力学形成相对更有利。观察到,我们基于液态合金阳极的 K-O 电池具有长循环寿命(超过 620 小时)和低放电-充电过电势(初始循环时约为 0.05 V)。此外,对 K-O 电池降解的机理研究表明,O 交叉效应和醚电解质不稳定性是 K-O 电池的关键问题。总之,本研究为解决碱金属-氧电池中因枝晶生长引起的问题提供了新途径。

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