材料科学
水溶液
阳极
锌
聚合物
金属
弹性(物理)
电化学
化学工程
电极
复合材料
有机化学
冶金
物理化学
化学
工程类
作者
Jaeyeon Lee,Jaeyeon Lee,Moonwon Lee,Boyeon Kim,Hyunjin Jung,Kanghoon Yim,Myung-Hyun Ryu,Gi Doo,Jae‐Hak Choi,Jiyun Heo,Sung Gap Im,Kyu‐Nam Jung,Myung Seok Oh,Jinhong Lee,Jinhong Lee
标识
DOI:10.1002/adfm.202507730
摘要
Abstract Zinc is attractive for battery applications because of its high theoretical capacity, abundance, safety, low redox potential, cost, and toxicity. However, Zn suffers from poor reversibility due to its low coulombic efficiency, dendrite growth, and detrimental chemical side reactions, including the hydrogen evolution reaction (HER). A simple initiated chemical vapor deposition method for depositing 200‐nm‐thick superhydrophobic/elastic polymer coatings on Zn anodes as a protective artificial solid‐electrolyte interphase is demonstrated, which reduces the water activity to mitigate the HER and enhances the mechanical stability toward volume changes during cycling. Furthermore, density functional theory calculations show that the fluorinated polymer coating effectively reduces water activity, thus inhibiting the HER. A pouch‐type Zn||I 2 aqueous battery (5 × 5 cm 2 ) with a pF1V1 polymer coating delivered a capacity of 95 mAh at 4.6 mA∙cm −2 (≈1.2 C) and retained 98.4% of its capacity over 583 cycles. This study reveals novel prospects for incorporating superhydrophobic and elastic polymer compounds in Zn‐based battery research, offering a viable approach for enhancing cycling stability.
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