Wang Yuxuan, Gao Yong, He Junyuan, Yang Jiayu, Fu Gangwen, Cao Qinghe, Pu Jie, Bu Fan, Xu Xi, Guan Cao
Frontiers Science Center for Flexible Electronics, Institute of Flexible Electronics, Northwestern Polytechnical University, Xi'an, 710072, P. R. China.
Key Laboratory of Flexible Electronics of Zhejiang Province, Ningbo Institute of Northwestern Polytechnical University, 218 Qingyi Road, Ningbo, 315103, China.
Adv Mater. 2024 Feb;36(8):e2307819. doi: 10.1002/adma.202307819. Epub 2023 Dec 13.
The practical applications of alkaline zinc-based batteries are challenged by poor rechargeability with an insufficient zinc utilization ratio. Herein, a sphere-confined reversible zinc deposition behavior from a free-standing Zn anode is reported, which is composed of bi-continuous ZnO-protected interconnected and hollowed Zn microspheres by the Kirkendall effect. The cross-linked Zn network with in situ formed outer ZnO shell and inner hollow space not only inhibits side reactions but also ensures long-range conductivity and accommodates shape change, which induces preferential reversible zinc dissolution-deposition process in the inner space and maintains structural integrity even under high zinc utilization ratio. As a result, the Zn electrode can be stably cycled for 390 h at a high current density of 20 mA cm (60% depth of discharge), outperforming previously reported alkaline Zn anodes. A stable zinc-nickel oxide hydroxide battery with a high cumulative capacity of 8532 mAh cm at 60% depth of discharge is also demonstrated.
锌利用率不足导致的可充电性差,对碱性锌基电池的实际应用构成了挑战。在此,报道了一种来自独立锌阳极的球形受限可逆锌沉积行为,该阳极由通过柯肯达尔效应形成的双连续ZnO保护的相互连接且中空的锌微球组成。具有原位形成的外部ZnO壳和内部中空空间的交联锌网络不仅抑制了副反应,还确保了长程导电性并适应形状变化,这在内空间中诱导了优先的可逆锌溶解-沉积过程,即使在高锌利用率下也能保持结构完整性。结果,锌电极在20 mA cm的高电流密度下(放电深度为60%)可稳定循环390 h,优于先前报道的碱性锌阳极。还展示了一种稳定的锌-氢氧化镍氧化物电池,在60%放电深度下具有8532 mAh cm的高累积容量。