Zhou Jinqiu, Zhang Lifang, Peng Mingji, Zhou Xi, Cao Yufeng, Liu Jie, Shen Xiaowei, Yan Chenglin, Qian Tao
School of Chemistry and Chemical Engineering, Nantong University, Nantong, 226019, P. R. China.
Soochow Institute for Energy and Materials Innovations, College of Energy, Key Laboratory of Advanced Carbon Materials and Wearable Energy Technologies of Jiangsu Province, Soochow University, Suzhou, 215006, P. R. China.
Adv Mater. 2022 May;34(21):e2200131. doi: 10.1002/adma.202200131. Epub 2022 Apr 25.
The fluidity of aqueous electrolytes and undesired H evolution reaction (HER) can cause severe interfacial turbulence in aqueous Zn metal batteries (ZMBs) at deep cycling with high capacities and current densities, which would further perturb ion flux and aggravate Zn dendrite growth. In this study, a colloid-polymer electrolyte (CPE) with special colloidal phase and suppressed HER is designed to diminish interfacial turbulence and boost deep Zn electrochemistry. Density functional theory calculations confirm that the quantitative migratory barriers of Zn along the transport pathway in CPE demonstrate much smaller fluctuations compared with normal aqueous electrolyte, indicating that CPE can effectively diminish interfacial disturbance. Benefitting from this, the Zn ion flux can be homogenized and deposited evenly on the electrode, which is confirmed by finite element simulation and in situ Raman measurements. Consequently, CPE enables stable operation of Zn//Cu cells even with high capacity (up to 20 mAh cm ) and current density (up to 100 mA cm ) and Zn//Na V O full-cell with N/P ratio as low as 1 (i.e., 100% Zn utilization). It is believed that this strategy opens a brand-new avenue based on CPE toward boosting deep-cycling electrochemistry in ZMBs and even other aqueous energy-storage applications.
水性电解质的流动性以及不期望发生的析氢反应(HER)会在高容量和高电流密度的深度循环过程中,导致水系锌金属电池(ZMBs)出现严重的界面湍流,这会进一步扰乱离子通量并加剧锌枝晶的生长。在本研究中,设计了一种具有特殊胶体相且抑制析氢反应的胶体聚合物电解质(CPE),以减少界面湍流并促进深度锌电化学过程。密度泛函理论计算证实,与普通水性电解质相比,锌在CPE中传输路径上的定量迁移势垒波动要小得多,这表明CPE可以有效减少界面干扰。得益于此,锌离子通量能够均匀化并均匀地沉积在电极上,这一点通过有限元模拟和原位拉曼测量得到了证实。因此,即使在高容量(高达20 mAh cm )和高电流密度(高达100 mA cm )的情况下,CPE也能使Zn//Cu电池稳定运行,对于N/P比低至1(即100%锌利用率)的Zn//Na V O全电池也是如此。据信,这一策略基于CPE为促进ZMBs甚至其他水性储能应用中的深度循环电化学开辟了一条全新的途径。