电解质
溶解
电化学
电池(电)
插层(化学)
水溶液
储能
铅酸蓄电池
化学工程
材料科学
无机化学
电极
化学
物理化学
热力学
物理
工程类
功率(物理)
作者
Yadong Li,Yuhao Li,Qingshan Liu,Yongshuai Liu,Tiansheng Wang,Mingjin Cui,Yu Ding,Hongsen Li,Guihua Yu
标识
DOI:10.1002/ange.202318444
摘要
Abstract Zn−MnO 2 batteries have attracted extensive attention for grid‐scale energy storage applications, however, the energy storage chemistry of MnO 2 in mild acidic aqueous electrolytes remains elusive and controversial. Using α‐MnO 2 as a case study, we developed a methodology by coupling conventional coin batteries with customized beaker batteries to pinpoint the operating mechanism of Zn−MnO 2 batteries. This approach visually simulates the operating state of batteries in different scenarios and allows for a comprehensive study of the operating mechanism of aqueous Zn−MnO 2 batteries under mild acidic conditions. It is validated that the electrochemical performance can be modulated by controlling the addition of Mn 2+ to the electrolyte. The method is utilized to systematically eliminate the possibility of Zn 2+ and/or H + intercalation/de‐intercalation reactions, thereby confirming the dominance of the MnO 2 /Mn 2+ dissolution‐deposition mechanism. By combining a series of phase and spectroscopic characterizations, the compositional, morphological and structural evolution of electrodes and electrolytes during battery cycling is probed, elucidating the intrinsic battery chemistry of MnO 2 in mild acid electrolytes. Such a methodology developed can be extended to other energy storage systems, providing a universal approach to accurately identify the reaction mechanism of aqueous aluminum‐ion batteries as well.
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