论文标题

电池阳极的SABATIER原理:异性框的化学动力学和可逆电沉积

The Sabatier principle for Battery Anodes: Chemical Kinetics and Reversible Electrodeposition at Heterointerfaces

论文作者

Zheng, Jingxu, Deng, Yue, Li, Wenzao, Yin, Jiefu, West, Patrick J., Tang, Tian, Tong, Xiao, Bock, David C., Jin, Shuo, Zhao, Qing, Garcia-Mendez, Regina, Takeuchi, Kenneth J., Takeuchi, Esther S., Marschilok, Amy C., Archer, Lynden A.

论文摘要

几个世纪以来,表面化学如何影响随后发生的反应一直是一个长期存在的科学和技术兴趣的问题。最近,它在化学的子阶级 - 异性危机中的电化学中重新出现了一个关键问题,其中答案对人类的方式和哪种形式都具有影响,而人类则存储了来自太阳能和风能安装的可再生电力量增加。在这里,我们考虑了这种相互重点的表面化学之间的关系以及在可充电电池电极下电化学转换的可逆性。传统的智慧认为,金属沉积物和电极之间的更强的化学相互作用可促进可逆性。相反,我们报告说,沉积物和基材之间的化学相互作用强度既不太弱也不太强,可以使电池阳极处的电镀/剥离氧化还原过程的最高可逆性和稳定性。类似于化学异质催化的经验性破坏原理,我们的发现源于竞争过程的融合 - 一种是由电化学驱动的,另一种是由化学合金化的。基于对当代兴趣的电池阳极中金属电镀/剥离系统的实验评估,我们表明,这种知识为基于地球丰富的低成本金属而设计的高度可逆的电化学能源储能技术提供了一种强大的工具。

How surface chemistry influences reactions occurring thereupon has been a long-standing question of broad scientific and technological interest for centuries. Recently, it has re-emerged as a critical question in a subdiscipline of chemistry - electrochemistry at heterointerphases, where the answers have implications for both how, and in what forms, humanity stores the rising quantities of renewable electric power generated from solar and wind installations world-wide. Here we consider the relation between the surface chemistry at such interphases and the reversibility of electrochemical transformations at a rechargeable battery electrode. Conventional wisdom holds that stronger chemical interaction between the metal deposits and electrode promotes reversibility. We report instead that a moderate strength of chemical interaction between the deposit and the substrate, neither too weak nor too strong, enables highest reversibility and stability of the plating/stripping redox processes at a battery anode. Analogous to the empirical Sabatier principle for chemical heterogeneous catalysis, our finding arises from the confluence of competing processes - one driven by electrochemistry and the other by chemical alloying. Based on experimental evaluation of metal plating/stripping systems in battery anodes of contemporary interest, we show that such knowledge provides a powerful tool for designing key materials in highly reversible electrochemical energy storage technologies based on earth-abundant, low-cost metals.

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