Facilitating Oriented Dense Deposition: Utilizing Crystal Plane End‐Capping Reagent to Construct Dendrite‐Free and Highly Corrosion‐Resistant (100) Crystal Plane Zinc Anode

Author:

Wang Huirong12,Zhou Anbin1,Hu Xin1,Song Zhihang1,Zhang Botao1,Gao Shengyu1,Huang Yongxin12,Cui Yanhua3,Cui Yixiu3,Li Li124,Wu Feng124,Chen Renjie124ORCID

Affiliation:

1. Department Beijing Key Laboratory of Environmental Science and Engineering School of Materials Science & Engineering Beijing Institute of Technology Beijing 100081 China

2. Advanced Technology Research Institute (Jinan) Beijing Institute of Technology Jinan 250300 China

3. Institute of Electronic Engineering China Academy of Engineering Physics Mianyang 621900 China

4. Collaborative Innovation Center of Electric Vehicles in Beijing Beijing 100081 China

Abstract

AbstractDendrite growth and corrosion issues have significantly hindered the usability of Zn anodes, which further restricts the development of aqueous zinc‐ion batteries (AZIBs). In this study, a zinc‐philic and hydrophobic Zn (100) crystal plane end‐capping reagent (ECR) is introduced into the electrolyte to address these challenges in AZIBs. Specifically, under the mediation of 100‐ECR, the electroplated Zn configures oriented dense deposition of (100) crystal plane texture, which slows down the formation of dendrites. Furthermore, owing to the high corrosion resistance of the (100) crystal plane and the hydrophobic protective interface formed by the adsorbed ECR on the electrode surface, the Zn anode demonstrates enhanced reversibility and higher Coulombic efficiency in the modified electrolyte. Consequently, superior electrochemical performance is achieved through this novel crystal plane control strategy and interface protection technology. The Zn//VO2 cells based on the modified electrolyte maintained a high‐capacity retention of ≈80.6% after 1350 cycles, corresponding to a low‐capacity loss rate of only 0.014% per cycle. This study underscores the importance of deposition uniformity and corrosion resistance of crystal planes over their type. And through crystal plane engineering, a high‐quality (100) crystal plane is constructed, thereby expanding the range of options for viable Zn anodes.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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