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评估 Zn-Mn 水系电池容量的方案:pH 值的线索。

Protocol in Evaluating Capacity of Zn-Mn Aqueous Batteries: A Clue of pH.

机构信息

College of Physics, College of Chemistry, State Key Laboratory of Inorganic Synthesis and Preparative Chemistry, International Center of Future Science, Jilin University, Changchun, 130012, P. R. China.

Laboratory of Advanced Materials, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, and School of Chemistry and Materials, Fudan University, Shanghai, 200433, P. R. China.

出版信息

Adv Mater. 2023 Jun;35(24):e2300053. doi: 10.1002/adma.202300053. Epub 2023 Apr 14.

Abstract

In the literature, Zn-Mn aqueous batteries (ZMABs) confront abnormal capacity behavior, such as capacity fluctuation and diverse "unprecedented performances." Because of the electrolyte additive-induced complexes, various charge/discharge behaviors associated with different mechanisms are being reported. However, the current performance assessment remains unregulated, and only the electrode or the electrolyte is considered. The lack of a comprehensive and impartial performance evaluation protocol for ZMABs hinders forward research and commercialization. Here, a pH clue (proton-coupled reaction) to understand different mechanisms is proposed and the capacity contribution is normalized. Then, a series of performance metrics, including rated capacity (C ) and electrolyte contribution ratio from Mn (CfM), are systematically discussed based on diverse energy storage mechanisms. The relationship between Mn (II) ↔ Mn (III) ↔ Mn (IV) conversion chemistry and protons consumption/production is well-established. Finally, the concrete design concepts of a tunable H /Zn /Mn storage system for customized application scenarios, opening the door for the next-generation high-safety and reliable energy storage system, are proposed.

摘要

在文献中,Zn-Mn 水系电池(ZMAB)面临异常的容量行为,如容量波动和各种“前所未有的性能”。由于电解质添加剂诱导的配合物,正在报道与不同机制相关的各种充放电行为。然而,当前的性能评估仍然没有规范,仅考虑电极或电解质。缺乏对 ZMAB 的全面和公正的性能评估协议阻碍了其向前发展和商业化。在这里,提出了一种 pH 线索(质子耦合反应)来理解不同的机制,并对容量贡献进行归一化。然后,根据不同的储能机制,系统地讨论了一系列性能指标,包括额定容量(C)和来自 Mn 的电解质贡献比(CfM)。Mn(II)↔Mn(III)↔Mn(IV)转化化学与质子消耗/产生之间的关系已经确立。最后,提出了用于定制应用场景的可调谐 H/Zn/Mn 存储系统的具体设计概念,为下一代高安全性和可靠的储能系统打开了大门。

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