材料科学
过电位
阳极
相间
化学工程
动力学
电解质
枝晶(数学)
电极
无定形固体
电化学
物理化学
化学
结晶学
遗传学
量子力学
几何学
生物
物理
工程类
数学
作者
Qiaoyun Liu,Long Jiao,Jizhen Wang,Hongyuan Bai,Chao Yi,Yusen Fu,Jiajia Liu,Wenxin Wang,Yechen Lei,Tian Zhang,Leixin Yang,Dengkun Shu,Shuo Yang,Chen‐Yang Li,Huan Li,Wenjun Zhang,Bowen Cheng
标识
DOI:10.1002/adfm.202422868
摘要
Abstract Achieving long‐term cycling stability of Zn metal anodes at high rates is crucial for the practical applications of aqueous Zn ion batteries. However, the sluggish kinetics of Zn deposition and uncontrollable dendrite growth at the electrolyte/electrode interface will inevitably lead to inferior energy efficiency and limited cycling lifespan. To address these challenges, a consecutive kinetics‐mediating mechanism is proposed through the development of an in situ crafted amorphous zinc pyrophosphate (ZPPO) artificial interphase on the Zn anode (ZPPO@Zn). Experimental and theoretical analyses indicate that the designed interphase can not only drive homogeneous ion diffusion and high Zn 2+ enrichment at the reaction interface, but also simultaneously lower the Gibbs free energy of Zn 2+ deposition, thus enabling dendrites‐free and kinetics‐boosted Zn electrodeposition under high current densities. Notably, the ZPPO@Zn electrode demonstrates exceptional long‐term lifespans, e.g., over 2800 and 750 h of stable cycling in symmetrical cells at high current densities of 20 and 40 mA cm −2 , respectively, with low overpotential. Even under the challenging cycling condition of ultra‐high depth of discharge (DOD) of 80%, a steady cycling over 130 h is maintained. This study provides new insights into the design and optimization of interfacial engineering for fabricating high‐performance Zn metal anodes.
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