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高温钠硫纳米电池中多硫化钠电化学的原位透射电子显微镜研究

In Situ TEM Studies of Sodium Polysulfides Electrochemistry in High Temperature Na-S Nanobatteries.

作者信息

Li Yanshuai, Tang Yongfu, Li Xiaomei, Tu Wei, Zhang Liqiang, Huang Jianyu

机构信息

Clean Nano Energy Center, State Key Laboratory of Metastable Materials Science and Technology, Yanshan University, Qinhuangdao, 066004, P. R. China.

Hebei Key Laboratory of Applied Chemistry, College of Environmental and Chemical Engineering, Yanshan University, Qinhuangdao, 066004, P. R. China.

出版信息

Small. 2021 Jun;17(23):e2100846. doi: 10.1002/smll.202100846. Epub 2021 May 13.

Abstract

Understanding polysulfide electrochemistry in high temperature sodium-sulfur (HT-Na-S) batteries is crucial for their practical applications. Currently the discharge capacity of commercial HT-Na-S battery achieves only one third of its theoretical capacity due to polysulfides formation, understanding of which is limited due to technical difficulty in direct imaging polysulfides. Herein, in situ transmission electron microscopy implemented with a microelectromechanical systems (MEMS) heating device is used to investigate the electrochemical reactions of HT-Na-S batteries. The formation and evolution of transient polysulfides during cycling are revealed in real-time. Upon discharge, sulfur transforms to long-chain polysulfides, short-chain polysulfides, and finally Na S or its mixture with polysulfides, and the process is reversible during charge at high temperatures. Surprisingly, by introducing nanovoids into the sulfur cathode to buffer the large volume change thus preserving the integrity of the electronic/ionic pathways and reducing the diffusion distance of Na ions, the sulfur cathode is fully discharged to Na S rather than the conventionally observed Na S at 300 °C. Moreover, the electrochemical reaction is swift and highly reversible. The in situ studies provide not only new understanding to the polysulfide electrochemistry, but also critical strategies to boost the capacity and cyclability of HT-Na-S batteries for large-scale energy storage applications.

摘要

了解高温钠硫(HT-Na-S)电池中的多硫化物电化学对于其实际应用至关重要。目前,由于多硫化物的形成,商用HT-Na-S电池的放电容量仅达到其理论容量的三分之一,由于直接成像多硫化物存在技术困难,对其了解有限。在此,利用微机电系统(MEMS)加热装置实现的原位透射电子显微镜来研究HT-Na-S电池的电化学反应。实时揭示了循环过程中瞬态多硫化物的形成和演变。放电时,硫转化为长链多硫化物、短链多硫化物,最终转化为Na₂S或其与多硫化物的混合物,并且在高温充电过程中该过程是可逆的。令人惊讶的是,通过在硫阴极中引入纳米空隙以缓冲大的体积变化,从而保持电子/离子通道的完整性并缩短Na离子的扩散距离,硫阴极在300℃时完全放电至Na₂S,而不是传统观察到的Na₂S₂。此外,电化学反应迅速且高度可逆。原位研究不仅为多硫化物电化学提供了新的认识,还为提高HT-Na-S电池用于大规模储能应用的容量和循环稳定性提供了关键策略。

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