材料科学
电极
枝晶(数学)
电化学
剥离(纤维)
沉积(地质)
原位
阳极
分析化学(期刊)
化学工程
纳米技术
复合材料
化学
几何学
物理化学
色谱法
生物
工程类
古生物学
有机化学
数学
沉积物
作者
Guangxia Feng,Jiaming Guo,Huajun Tian,Zhao Li,Yaping Shi,Xiaoliang Li,Xu Yang,David Mayerich,Yang Yang,Xiaonan Shan
标识
DOI:10.1002/aenm.202103484
摘要
Abstract Uncontrollable dendrite growth is closely related to non‐uniform reaction environments. However, there is a lack of understanding and analysis methods to probe the localized electrochemical environment (LEE). Here the effects of the LEE are investigated, including localized ion concentrations, current density, and electric potential, on metal plating/stripping dynamics and dendrite minimization. A novel in situ 3D microscopy technique is developed to image the morphology dynamics and deposition rate of Zn plating/stripping processes on 3D Zn–Mn anodes. Using the in situ 3D microscope, the electrode morphology changes during the reactions are directly imaged and Zn deposition rate maps at different time points are obtained. It is found that reaction kinetics are highly correlated to LEE and electrode morphology. To further quantify the LEE effects, the digital twin technique is employed that allows the accurate calculation of the electrochemical environments, such as localized ion concentrations, current density, and electric potential, which cannot be directly measured from experiments. It is found that the curvature of the 3D electrode surface determines the LEE and significantly influences reaction kinetics. This provides a new strategy to minimize the dendrite formation by designing and optimizing the 3D geometry of the electrode to control the LEE.
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