Revisiting Zn-specific nucleation via a dimensionless factor to quantify interfacial electrochemistry of aqueous batteries
Abstract
Abstract Zn-based aqueous batteries have attracted widespread research attention, while the lack of nucleation theory for electrochemical interactions at the Zn-water interface constrains efforts to suppress the thermodynamically spontaneous hydrogen evolution reaction and dendrite formation, thereby stalling practical development. Elucidating Zn electrodeposition in aqueous media requires Zn-specific nucleation theory and a descriptor to regulate interfacial electrochemistry. Conventional Li-based spherical nucleation models disregard Zn’s crystallography and the interfacial resistance that governs nucleation, thereby focusing on polarization variations. In this work, we reformulate the classical spherical nucleation theory derived by Li for the hexagonal close-packed structure of Zn and establish a dimensionless descriptor ( W f ) to quantitatively rationalize interfacial electrochemistry. W f synthesizes the polarization driving force and interfacial resistance into a stability metric. Higher W f values facilitate uniform Zn deposition, as evidenced by the literature. Accordingly, we develop a high- W f electrolyte to inhibit dendrites and side reactions, achieving over 700 h at 100% depth of discharge and 7660 cycles at 10 A g −1 in a Zn||NaV 3 O 8 cell. This work provides a fundamental nucleation theory and a generally applicable quantitative metric for the rational design of Zn-based aqueous batteries.
Article Details
Authors (17)
Zeyu Wang
Wanhai Zhou
Laboratory of Advanced Materials, Aqueous Battery Center, College of Smart Materials and Future Energy
Gaoyang Li
Zhuo Yang
Frontiers Science Center for New Organic Matter, Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), State Key Laboratory of Advanced Chemical Power Sources, College of Chemistry
Zefang Yang
Yuhang Liu
School of Materials Science and Engineering
Tengsheng Zhang
Laboratory of Advanced Materials, Aqueous Battery Center, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, Electron Microscope Center of Fudan University, Shanghai Wusong Laboratory of Materials Science, and Faculty of Chemistry and Materials
Hongrun Jin
Shixiang Ding
Junwei Zhang
Xia Wang
Fanxing Bu
Min Wang
Jingwen Zhao
Qingdao Industrial Energy Storage Research Institute, Qingdao Institute of Bioenergy and Bioprocess Technology
Zaiwang Zhao
College of Energy Materials and Chemistry, College of Chemistry and Chemical Engineering
Dongyuan Zhao
Laboratory of Advanced Materials, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, State Key Laboratory of Porous Materials for Separation and Conversion, Fudan University, 220 Handan, Shanghai 200433, P. R. China
Dongliang Chao
Laboratory of Advanced Materials, Aqueous Battery Center, College of Smart Materials and Future Energy