Li Haoyu, Ren Yu, Zhu Yue, Tian Jiaming, Sun Xinyi, Sheng Chuanchao, He Ping, Guo Shaohua, Zhou Haoshen
College of Engineering and Applied Sciences, Jiangsu Key Laboratory of Artificial Functional Materials, National Laboratory of Solid State Microstructures, Collaborative Innovation Centre of Advanced Microstructures, Frontiers Science Center for Critical Earth Material Cycling, Nanjing University, Nanjing, 210093, P. R. China.
Lab of Power and Energy Storage Batteries, Shenzhen Research Institute of Nanjing University, Shenzhen, 518057, P. R. China.
Angew Chem Int Ed Engl. 2023 Oct 9;62(41):e202310143. doi: 10.1002/anie.202310143. Epub 2023 Aug 31.
The moderate reversibility of Zn anodes, as a long-standing challenge in aqueous zinc-ion batteries, promotes the exploration of suitable electrolyte additives continuously. It is crucial to establish the absolute predominance of smooth deposition within multiple interfacial reactions for stable zinc anodes, including suppressing side parasitic reactions and facilitating Zn plating process. Trehalose catches our attention due to the reported mechanisms in sustaining biological stabilization. In this work, the inter-disciplinary application of trehalose is reported in the electrolyte modification for the first time. The pivotal roles of trehalose in suppressed hydrogen evolution and accelerated Zn deposition have been investigated based on the principles of thermodynamics as well as reaction kinetics. The electrodeposit changes from random accumulation of flakes to dense bulk with (002)-plane exposure due to the unlocked crystal-face oriented deposition with trehalose addition. As a result, the highly reversible Zn anode is obtained, exhibiting a high average CE of 99.8 % in the Zn/Cu cell and stable cycling over 1500 h under 9.0 % depth of discharge in the Zn symmetric cell. The designing principles and mechanism analysis in this study could serve as a source of inspiration in exploring novel additives for advanced Zn anodes.
锌阳极的适度可逆性作为水系锌离子电池中长期存在的挑战,促使人们不断探索合适的电解质添加剂。对于稳定的锌阳极而言,在多个界面反应中确立平滑沉积的绝对优势至关重要,这包括抑制副寄生反应以及促进锌电镀过程。由于在维持生物稳定性方面有报道的机制,海藻糖引起了我们的关注。在这项工作中,首次报道了海藻糖在电解质改性中的跨学科应用。基于热力学原理以及反应动力学,研究了海藻糖在抑制析氢和加速锌沉积方面的关键作用。由于添加海藻糖解锁了晶面取向沉积,电沉积物从随机堆积的薄片变为具有(002)面暴露的致密块状。结果,获得了高度可逆的锌阳极,在锌/铜电池中表现出99.8%的高平均库仑效率,并且在锌对称电池中在9.0%的放电深度下稳定循环超过1500小时。本研究中的设计原理和机理分析可为探索先进锌阳极的新型添加剂提供灵感来源。