用于高性能锌-离子电池的锌-离子锚诱导型高可逆锌阳极

Dr. Shuang Zhou, Xinyu Meng, Yining Chen, Jianwen Li, Prof. Shangyong Lin, Prof. Chao Han, Prof. Xiaobo Ji, Prof. Zhi Chang, Prof. Anqiang Pan
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引用次数: 0

摘要

不稳定的锌界面会产生严重的有害寄生副反应和无法控制的锌枝晶,严重困扰着锌离子水电池的实际应用。界面稳定性与电解质配置和 Zn2+ 沉积行为密切相关。在这项工作中,最初提出了一种独特的锌离子锚定策略,用于操纵溶解锌离子的配位结构并引导锌离子的沉积行为。具体来说,作为锌离子锚的两性带电离子添加剂(记为 DM)可利用其带正电荷的 -NR4+ 基团紧紧吸附在锌表面,引导锌离子均匀分布。另一方面,DM 带有负电荷的 -SO3- 基团可减少锌离子溶解鞘内的活性水分子。得益于这种特殊的协同效应,金属锌呈现出高度有序和紧凑的 (002) Zn 沉积,副反应微乎其微。因此,先进的 Zn|||Zn 对称电池具有 7000 小时的超长寿命(0.25 mA cm-2,0.25 mAh cm-2)。此外,基于这一策略,低负极/正极容量比(N/P 比=2.98)的 NH4V4O10||Zn 袋式电池在 180 个循环中保持了 80.4% 的容量。更实用的 4 厘米*4 厘米大小的袋式电池可在 50 次循环中稳定地输出 37.0 mAh 的高容量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Zinc-Ion Anchor Induced Highly Reversible Zn Anodes for High Performance Zn-Ion Batteries

Unstable Zn interface with serious detrimental parasitic side-reactions and uncontrollable Zn dendrites severely plagues the practical application of aqueous zinc-ion batteries. The interface stability was closely related to the electrolyte configuration and Zn2+ depositional behavior. In this work, a unique Zn-ion anchoring strategy is originally proposed to manipulate the coordination structure of solvated Zn-ions and guide the Zn-ion depositional behavior. Specifically, the amphoteric charged ion additives (denoted as DM), which act as zinc-ion anchors, can tightly absorb on the Zn surface to guide the uniform zinc-ion distribution by using its positively charged −NR4+ groups. While the negatively charged −SO3 groups of DM on the other hand, reduces the active water molecules within solvation sheaths of Zn-ions. Benefiting from the special synergistic effect, Zn metal exhibits highly ordered and compact (002) Zn deposition and negligible side-reactions. As a result, the advanced Zn||Zn symmetric cell delivers extraordinarily 7000 hours long lifespan (0.25 mA cm−2, 0.25 mAh cm−2). Additionally, based on this strategy, the NH4V4O10||Zn pouch-cell with low negative/positive capacity ratio (N/P ratio=2.98) maintains 80.4 % capacity retention for 180 cycles. A more practical 4 cm*4 cm sized pouch-cell could be steadily cycled in a high output capacity of 37.0 mAh over 50 cycles.

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来源期刊
Angewandte Chemie
Angewandte Chemie 化学科学, 有机化学, 有机合成
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