材料科学
沉积(地质)
动力学
金属
化学工程
比例(比率)
锌
纳米技术
无机化学
冶金
化学
古生物学
物理
量子力学
沉积物
工程类
生物
作者
Xiaomei Huo,Guowei Gao,Boxin Li,Zhenkai Zhou,Kaiqian Shu,Jingxuan Bi,Zhuzhu Du,Longhua Xu,Wei Ai
标识
DOI:10.1002/aenm.202502238
摘要
Abstract The glass fiber separator is a critical component in Zn metal batteries (ZMBs), but its disordered pores inadequately regulate the flow of anions and cations, leading to uncontrolled dendrite growth. Herein, the integration of ion self‐concentrating zincized hectorite (Zn‐HEC) layers into the separator is introduced and their crucial role in managing ion distribution and solvation on the surface of the Zn anode during battery operation is revealed. Density functional theory demonstrates that Zn‐HEC possesses a notable Zn 2+ self‐concentration capability, acting as microzone Zn 2+ reservoirs that promote rapid and even Zn 2+ transport. This feature prevents the formation of Zn 2+ ‐depleted zones during Zn deposition. Moreover, the incorporated Zn‐HEC effectively curtails the migration of SO 4 2− and significantly minimizes the desolvation barrier of hydrated Zn 2+ . Consequently, Zn‐HEC facilitates uniform Zn deposition along the (002) crystal planes of the Zn anode, enabling a lifespan of over 2000 h at 20 mA cm −2 for 5 mAh cm −2 and a cycle life of 500 h at an extraordinarily high rate of 50 mA cm −2 (10 mAh cm −2 ). Moreover, the I 2 ||GF@Zn‐HEC||Zn pouch cell with 1.6 Ah capacity exhibits outstanding cycling stability for 200 cycles. This study introduces a new approach for optimizing Zn deposition in next‐generation ZMBs.
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