Zheng Leilei, Li Huihua, Gao Mingbo, Huang Keer, Wang Jian, Su Long, Li Lei, Lin Hongzhen, Gao Xinpei, Liu Zhengqing, Zhang Huang
Key Laboratory of Engineering Dielectric and Applications (Ministry of Education), School of Electrical and Electronic Engineering, Harbin University of Science and Technology, Harbin, 150080, P. R. China.
Institute of Flexible Electronics, Northwestern Polytechnical University, Xi'an, 710072, P. R. China.
Adv Sci (Weinh). 2024 Nov;11(43):e2407102. doi: 10.1002/advs.202407102. Epub 2024 Sep 28.
The interfacial dynamics and chemistry at the electrolyte/metal interface, particularly the formation of an adsorption interphase, is paramount in dictating the reversibility of Zn metal deposition and dissolution processes in battery systems. Herein, a series of different cationic ammonium-based electrolyte additives are screened that effectively modulate the interfacial chemistry of zinc anodes in aqueous electrolytes, significantly improving the reversibility of Zn metal plating/stripping processes. As initially comprehensive investigation by combining theoretical calculation and molecular dynamic simulation, the tetramethylammonium cation, with its specific molecular structure and charge distribution, is identified as pivotal in mediating the Zn(HO) solvation shell structure at the electrode/electrolyte interface and shows the strong resistance against electrolyte corrosion as revealed by X-ray and optical measurements. As a result, the Zn||Zn symmetric cell with optimal electrolyte lasts for over 4400 h of stable plating/stripping behaviors, and the Zn||Cu asymmetric cell stabilizes for 2100 cycles with an average Coulombic efficiency of 99.8%, which is much better than the-state-of-art progress. Consequently, full-cells coupled with various cathodes showcase improved electrochemical performance, displaying high capacity-retention and low self-discharge behaviors. These findings offer essential insights of cationic additives in ameliorating zinc anode performance.
电解质/金属界面处的界面动力学和化学性质,特别是吸附中间相的形成,对于决定电池系统中锌金属沉积和溶解过程的可逆性至关重要。在此,筛选了一系列不同的阳离子铵基电解质添加剂,它们有效地调节了水系电解质中锌阳极的界面化学性质,显著提高了锌金属电镀/剥离过程的可逆性。作为最初通过结合理论计算和分子动力学模拟进行的全面研究,具有特定分子结构和电荷分布的四甲基铵阳离子被确定为在介导电极/电解质界面处的Zn(HO)溶剂化壳结构中起关键作用,并且如X射线和光学测量所揭示的那样,显示出对电解质腐蚀的强抗性。结果,具有最佳电解质的Zn||Zn对称电池持续进行超过4400小时的稳定电镀/剥离行为,并且Zn||Cu不对称电池稳定运行2100次循环,平均库仑效率为99.8%,这比现有技术进展要好得多。因此,与各种阴极耦合的全电池展示出改善的电化学性能,表现出高容量保持率和低自放电行为。这些发现为阳离子添加剂改善锌阳极性能提供了重要见解。