Tailored fluoroborate-based electrolyte with fast interphase formation kinetics toward stable Ah-level zinc batteries

相间 电解质 动力学 化学工程 材料科学 化学 无机化学 冶金 电极 物理化学 物理 工程类 遗传学 量子力学 生物
作者
Jiangtao Huang,Yunpeng Zhong,Najla AlMasoud,Taghrid S. Alomar,Yiman Xie,Bingan Lu,Shuquan Liang,Zeinhom M. El‐Bahy,Siyu Tian,Jiang Zhou
出处
期刊:Advanced powder materials [Elsevier BV]
卷期号:4 (4): 100306-100306 被引量:10
标识
DOI:10.1016/j.apmate.2025.100306
摘要

Solid electrolyte interphase (SEI) plays a critical role in stabilizing zinc batteries, yet insufficient attention has been given to its in-situ growth kinetics and the post-stripping morphology of zinc anodes, both affecting the SEI-forming quality. Herein, we showcase a synergistic effect between uniform Zn stripping and rapid SEI formation through introducing tetramethylurea (TMU) into ZnBF 4 -based electrolytes. TMU participates in the Zn 2+ solvation structure and reshapes the electrolyte hydrogen-bond network, enabling a water-poor electric double layer that mitigates the corrosion-induced stripping inhomogeneity. Subsequently, a multi-component and inorganic-rich SEI with high uniformity is rapidly deposited during the plating process. This SEI with abundant zincophilic sites activates instantaneous nucleation and hence guides dense and uniform Zn deposition. With enhanced Zn stripping/plating symmetry, the long-term effectiveness of SEI is guaranteed, contributing to the high reversibility over 3,200 h at 1 mA cm -2 /2 mAh cm -2 . Impressively, the Zn//NaV 3 O 8 full cell (4.43 mAh cm -2 ) can be steadily cycled at 0.1 A g -1 under an intermittent-rest protocol. The stable operation of an Ah-level pouch cell over 100 cycles further demonstrates the scalability of this strategy and highlights the significance of achieving high stripping/plating symmetry and a long-term effective SEI toward practical zinc batteries. A ZnBF 4 -based aqueous-organic hybrid electrolyte is proposed to synergistically modulate the initial stripping uniformity and the SEI formation kinetics toward highly reversible Zn anodes. The suppressed corrosion and optimized Zn nucleation mode jointly enhance the Zn stripping/plating symmetry and enable more practical zinc metal batteries. • With modified EDL structure, the even post-stripping morphology of Zn anode can be achieved for better SEI forming uniformity. • The optimized solvation structure enables fast SEI formation kinetics that guides dense and flat Zn deposition. • The increased Zn stripping/plating reversibility enhances long-term stability of SEI and extends the lifespan over 3200 h at 1 mA cm -2 /2 mAh cm -2 . • The stable operation of the Ah-level pouch cell for over 100 cycles demonstrates remarkable practicability.
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