Guo Dongfang, Li Fengyu, Zhang Bin
School of Physics and Microelectronics, Zhengzhou University, Zhengzhou, 450001, China.
School of Physics and Laboratory of Zhongyuan Light, Zhengzhou University, Zhengzhou, 450001, China.
Adv Sci (Weinh). 2025 Jan;12(4):e2411995. doi: 10.1002/advs.202411995. Epub 2024 Dec 4.
As an important candidate for rechargeable energy storage devices, the large-scale development of aqueous zinc ion batteries has been hindered by hydrogen evolution and uncontrollable dendrites of metal anodes. A novel ZnO-SiO composite interface phase (Zn@ZSCP) with a double protective effect based on in situ synthesis by hydrothermal method is used to improve these difficulties. The hydrophilic SiO layer is beneficial to the dissolution of hydrated zinc ions and reduces the nucleation barrier during zinc deposition, while the stable ZnO layer helps to adjust the electric field distribution on the surface of the metal anode to further induce uniform zinc nucleation. The cycle life of the Zn@ZSCP||Zn@ZSCP symmetric battery based on this innovative interface phase modification is up to 2500 h. Even at a high current density of 8 mA cm, the symmetric battery still has a stable cycle life of more than 2000 h. The zinc-iodine full battery based on Zn@ZSCP anode and low-cost biomass-derived porous carbon exhibits an excellent specific capacity and outstanding cycle stability. This simple and reasonable battery structure design not only improves the practicability of aqueous zinc ion batteries to a certain extent but also helps to develop more efficient and environmentally friendly zinc metal batteries.
作为可充电储能设备的重要候选者,水系锌离子电池的大规模发展受到析氢和金属阳极不可控枝晶的阻碍。基于水热法原位合成的具有双重保护作用的新型ZnO-SiO复合界面相(Zn@ZSCP)被用于改善这些难题。亲水性SiO层有利于水合锌离子的溶解,并降低锌沉积过程中的成核势垒,而稳定的ZnO层有助于调节金属阳极表面的电场分布,进一步诱导锌均匀成核。基于这种创新界面相改性的Zn@ZSCP||Zn@ZSCP对称电池的循环寿命高达2500小时。即使在8 mA cm的高电流密度下,对称电池仍具有超过2000小时的稳定循环寿命。基于Zn@ZSCP阳极和低成本生物质衍生多孔碳的锌碘全电池表现出优异的比容量和出色的循环稳定性。这种简单合理的电池结构设计不仅在一定程度上提高了水系锌离子电池的实用性,而且有助于开发更高效、环保的锌金属电池。