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通过具有分子锚定的多功能凝胶电解质实现择优取向沉积,使锌阳极具有高度可逆性。

Preferred Orientation Deposition via Multifunctional Gel Electrolyte with Molecular Anchor Enabling Highly Reversible Zn Anode.

作者信息

Xu Yu-Ting, Dai Sheng-Jia, Gong Ming-Jun, Zhang Ji-Zun, Xu Hai, Li Aijun, Sasaki Shin-Ichi, Zeng Xian-Xiang, Wu Xiong-Wei, Wang Xiao-Feng

机构信息

Key Laboratory of Physics and Technology for Advanced Batteries (Ministry of Education), College of Physics, Jilin University, Changchun, 130012, P. R. China.

Hunan Agricultural University, School of Chemistry and Materials Science, Changsha, Hunan, 410128, P. R. China.

出版信息

Small. 2024 Jan;20(1):e2304463. doi: 10.1002/smll.202304463. Epub 2023 Aug 30.

Abstract

The high activity of water molecules results in a series of awful parasitic reaction, which seriously impede the development of aqueous zinc batteries. Herein, a new gel electrolyte with multiple molecular anchors is designed by employing natural biomaterials from chitosan and chlorophyll derivative. The gel electrolyte firmly anchors water molecules by ternary hydrogen bonding to reduce the activity of water molecules and inhibit hydrogen evolution reaction. Meanwhile, the multipolar charged functional groups realize the gradient induction and redistribution of Zn , which drives oriented Zn (002) plane deposition of Zn and then achieves uniform Zn deposition and dendrite-free anode. As a result, it endows the Zn||Zn cell with over 1700 h stripping/plating processes and a high efficiency of 99.4% for the Zn||Cu cell. In addition, the Zn||V O full cells also exhibit capacity retention of 81.7% after 600 cycles at 0.5 A g and excellent long-term stability over 1600 cycles at 2 A g , and the flexible pouch cells can provide stable power for light-emitting diodes even after repeated bending. The gel electrolyte strategy provides a reference for reversible zinc anode and flexible wearable devices.

摘要

水分子的高活性会引发一系列不良的寄生反应,严重阻碍水系锌电池的发展。在此,通过使用壳聚糖和叶绿素衍生物等天然生物材料设计了一种具有多个分子锚定基团的新型凝胶电解质。该凝胶电解质通过三元氢键牢固地锚定水分子,以降低水分子的活性并抑制析氢反应。同时,多极带电官能团实现了锌离子的梯度诱导和重新分布,促使锌在(002)晶面定向沉积,进而实现锌的均匀沉积和无枝晶阳极。结果,它赋予锌||锌电池超过1700小时的充放电循环次数,以及锌||铜电池99.4%的高效率。此外,锌||V₂O₅全电池在0.5 A g⁻¹电流密度下循环600次后容量保持率为81.7%,在2 A g⁻¹电流密度下超过1600次循环具有出色的长期稳定性,并且柔性软包电池即使在反复弯曲后也能为发光二极管提供稳定的电力。凝胶电解质策略为可逆锌阳极和柔性可穿戴设备提供了参考。

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