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超氧化钾中的电荷传输机制。

Charge transport mechanisms in potassium superoxide.

作者信息

Hu Zongxiang, Tan Wenchang, Li Shunning, Pan Feng

机构信息

School of Advanced Materials, Peking University, Shenzhen Graduate School, Shenzhen 518055, People's Republic of China.

出版信息

Phys Chem Chem Phys. 2020 Nov 14;22(42):24480-24489. doi: 10.1039/d0cp03540h. Epub 2020 Oct 22.

Abstract

Rechargeable metal-air batteries based on superoxide discharge products are attractive due to the facile one-electron redox process of O/O. Recently, a K-O battery has been reported that showed a significantly lower discharge/charge potential gap than the Li-O battery systems. Here, we perform first-principles calculations on potassium superoxide (KO) to unravel the charge transport mechanism in this discharge product. The concentration and mobility of intrinsic carriers are calculated. The results show that hole polarons and negatively charged potassium ion vacancies are the main charge carriers. The conductivity associated with polaron hopping (2 × 10 S cm) is 8 orders of magnitude higher than that of LiO, and the ionic conductivity has a comparable value (1 × 10 S cm). Our calculation results can rationalize the experimental findings and provide a theoretical basis for the understanding of superoxide discharge products in metal-air batteries.

摘要

基于超氧化物放电产物的可充电金属空气电池因O/O的单电子氧化还原过程简便而备受关注。最近,有报道称一种钾氧电池的放电/充电电位差明显低于锂氧电池系统。在此,我们对超氧化钾(KO)进行第一性原理计算,以阐明该放电产物中的电荷传输机制。计算了本征载流子的浓度和迁移率。结果表明,空穴极化子和带负电的钾离子空位是主要的电荷载流子。与极化子跳跃相关的电导率(2×10 S cm)比LiO的电导率高8个数量级,离子电导率具有相近的值(1×10 S cm)。我们的计算结果能够合理解释实验结果,并为理解金属空气电池中的超氧化物放电产物提供理论依据。

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