表面改性诱导定向锌(002)沉积,实现高稳定性锌阳极

IF 4.6 4区 化学 Q2 ELECTROCHEMISTRY
Hongfei Zhang, Fujie Li, Zijin Li, Liu Gao, Binghui Xu, Chao Wang
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引用次数: 0

摘要

锌金属水电池(AZMBs)因其高容量、高安全性和低成本而被认为是电网级储能系统的理想候选材料。然而,锌阳极存在枝晶生长和不良的表面腐蚀问题,严重阻碍了 AZMB 的商业化。本文开发了一种利用原子层沉积(ALD)技术在锌阳极上形成致密氧化锌涂层的策略,旨在通过减少锌枝晶来提高其长期循环稳定性。这种表面修饰的锌阳极(ZnO@Zn)在对称电池中使用时,具有出色的长循环寿命(680 小时)和稳定的库仑效率。此外,在以二氧化锰为阴极的全电池中,ZnO@Zn 电极显示出很高的稳定性,在 2C 下循环 1100 次后几乎没有容量衰减。ZnO 涂层有利于减少腐蚀和副产物的产生,从而提高 Zn2+/Zn 剥离/电镀的可逆性。特别是,密度泛函理论(DFT)计算结果显示,氧化锌镀膜层能有效降低 ZnO@Zn 中 Zn(002)平面的吸附能,诱导 Zn2+ 向(002)晶面优先沉积,减少 Zn 树枝状突起。表面 ZnO 涂层方案为实现稳定的 AZMB 的无枝晶 Zn 阳极提供了一种可行的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Surface Modification Induces Oriented Zn(002) Deposition for Highly Stable Zinc Anode
Aqueous zinc metal batteries (AZMBs) are considered a promising candidate for grid-scale energy storage systems owing to their high capacity, high safety and low cost. However, Zn anodes suffer from notorious dendrite growth and undesirable surface corrosion, severely hindering the commercialization of AZMBs. Herein, a strategy for engineering a dense ZnO coating layer on Zn anodes using the atomic layer deposition (ALD) technique is developed, aiming to improve its long-term cycling stability with fewer Zn dendrites. The surface-modified Zn anode (ZnO@Zn) exhibits an excellent long-cycling life (680 h) and stable coulombic efficiency when being used in a symmetric cell. Moreover, the ZnO@Zn electrode shows a high stability with almost no capacity decay after 1100 cycles at 2C in a full cell using MnO2 as the cathode. The ZnO coating is conducive to reducing corrosion and the generation of by-products, thus increasing the reversibility of Zn2+/Zn stripping/plating. Particularly, density functional theory (DFT) calculation results reveal that the ZnO coating layer could effectively lower the adsorption energy of the Zn(002) plane in ZnO@Zn, inducing the preferential deposition of Zn2+ towards the (002) crystal plane with fewer Zn dendrites. The surface ZnO coating protocol provides a promising approach to achieve a dendrite-free Zn anode for stable AZMBs.
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来源期刊
Batteries
Batteries Energy-Energy Engineering and Power Technology
CiteScore
4.00
自引率
15.00%
发文量
217
审稿时长
7 weeks
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