“Pumping” Trace Cu Impurity out of Zn Foil for Sustainable Aqueous Battery Interface
Abstract
AbstractDendritic zinc (Zn) electrodeposition presents a significant obstacle to the large‐scale development of rechargeable zinc‐ion batteries. To mitigate this challenge, various interfacial strategies have been employed. However, these approaches often involve the incorporation of foreign materials onto Zn anode surface, resulting in increased material costs and processing complexities, not to mention the compromised interface endurability due to structural and compositional heterogeneity. Realizing that Cu atoms typically exist as trace impurities in commercial Zn, a novel approach is demonstrated that leverages these Cu impurities to create a Cu‐rich surface for effective modulation of Zn electrodeposition. By simply heating commercially available Zn foil with a naturally oxidized surface, not only the internal Cu atoms are thermally activated to become diffusible, their diffusion is also navigated toward the surface via oxygen attraction. The resulting Cu‐rich surface effectively regulates Zn electrodeposition, comparable to conventional interfacial strategies, yet exhibits superior cycling durability. 3D in situ microscopy confirms that this Cu‐rich surface enables dendrite‐free, compact, and (101)‐oriented Zn electrodeposition, contrasting with the traditional (002)‐oriented dendrite‐suppression mechanism. By transforming trace Cu impurity within Zn foil into a Cu‐rich surface, this work demonstrates a straightforward, cost‐effective and efficient method for controlling Zn electrodeposition.
Article Details
Authors (14)
Rui Zhong
Anhui Basic Discipline Research Center for Clean Energy and Catalysis, the Key Laboratory of Functional Molecular Solids Ministry of Education, College of Chemistry and Materials Science
Shengbo Wang
Kun He
Wei Wang
Guixing Mo
Wenzhou Key Lab of Advanced Energy Storage and Conversion, College of Chemistry and Materials Engineering Wenzhou University Wenzhou Zhejiang 325035 China
Weidong Ma
Xiaobin He
College of Chemistry and Materials Engineering Wenzhou University Wenzhou China
Wenhao Liang
Computer Network Information Center, Chinese Academy of Sciences 1 , Beijing 100190,
Jun Li
Huile Jin
Key Laboratory of Carbon Materials of Zhejiang Province, College of Chemistry and Materials Engineering
Zhijin Ju
Yao Wang
Shun Wang
Department of Mathematics
Yifei Yuan
College of Chemistry and Materials Engineering