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通过3D ZnF基质的阳极生长实现锌离子通量和去溶剂化效应的协同调控,用于长寿命且无枝晶的锌金属阳极

Synergistic Manipulation of Zn Ion Flux and Desolvation Effect Enabled by Anodic Growth of a 3D ZnF Matrix for Long-Lifespan and Dendrite-Free Zn Metal Anodes.

作者信息

Yang Yang, Liu Chaoyue, Lv Zeheng, Yang Hao, Zhang Yufei, Ye Minghui, Chen Libao, Zhao Jinbao, Li Cheng Chao

机构信息

School of Chemical Engineering and Light Industry, Guangdong University of Technology, Guangzhou, 510006, P. R. China.

College of Chemistry and Chemical Engineering, Xiamen University, Xiamen, 361005, P. R. China.

出版信息

Adv Mater. 2021 Mar;33(11):e2007388. doi: 10.1002/adma.202007388. Epub 2021 Feb 8.

DOI:10.1002/adma.202007388
PMID:33554430
Abstract

Aqueous rechargeable Zn metal batteries have attracted widespread attention due to the intrinsic high volumetric capacity, low cost, and high safety. However, the low Coulombic efficiency and limited lifespan of Zn metal anodes resulting from uncontrollable growth of Zn dendrites impede their practical application. In this work, a 3D interconnected ZnF matrix is designed on the surface of Zn foil (Zn@ZnF ) through a simple and fast anodic growth method, serving as a multifunctional protective layer. The as-fabricated Zn@ZnF electrode can not only redistribute the Zn ion flux, but also reduce the desolvation active energy significantly, leading to stable and facile Zn deposition kinetics. The results reveal that the Zn@ZnF electrode can effectively inhibit dendrites growth, restrain the hydrogen evolution reactions, and endow excellent plating/stripping reversibility. Accordingly, the Zn@ZnF electrode exhibits a long cycle life of over 800 h at 1 mA cm with a capacity of 1.0 mAh cm in a symmetrical cell test, the feasibility of which is also convincing in Zn@ZnF //MnO and Zn@ZnF //V O full batteries. Importantly, a hybrid zinc-ion capacitor of the Zn@ZnF //AC can work at an ultrahigh current density of ≈60 mA cm for up to 5000 cycles with a high capacity retention of 92.8%.

摘要

水系可充电锌金属电池因其固有的高体积容量、低成本和高安全性而受到广泛关注。然而,锌枝晶的不可控生长导致锌金属负极的库仑效率低和寿命有限,阻碍了它们的实际应用。在这项工作中,通过一种简单快速的阳极生长方法在锌箔(Zn@ZnF)表面设计了一种三维互连的ZnF基体,作为多功能保护层。制备的Zn@ZnF电极不仅可以重新分布锌离子通量,还能显著降低去溶剂化活化能,从而实现稳定且容易的锌沉积动力学。结果表明,Zn@ZnF电极可以有效抑制枝晶生长,抑制析氢反应,并具有优异的电镀/剥离可逆性。因此,在对称电池测试中,Zn@ZnF电极在1 mA cm²、容量为1.0 mAh cm²的条件下表现出超过800 h的长循环寿命,其在Zn@ZnF//MnO和Zn@ZnF//V₂O₅全电池中的可行性也令人信服。重要的是,Zn@ZnF//AC混合锌离子电容器可以在高达≈60 mA cm²的超高电流密度下工作5000次循环,容量保持率高达92.8%。

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