光催化
材料科学
制氢
载流子
兴奋剂
光催化分解水
带隙
纳米技术
可见光谱
分解水
太阳能
化学工程
纳米颗粒
铟
热液循环
光电子学
氢
硫化氢
氢燃料
硫化锌
宽禁带半导体
硫化物
锌
光伏系统
能量转换
能量转换效率
表面电荷
比表面积
作者
Ramanadha Mangiri,Nandarapu Purushotham Reddy,Joonho Bae
标识
DOI:10.1002/cctc.202501670
摘要
ABSTRACT Sustainable energy relies on developing reliable and efficient photocatalysts for solar‐powered hydrogen production. Zinc indium sulfide (ZnIn 2 S 4 , ZIS) has a favorable bandgap and can absorb visible light; however, its photocatalytic efficiency is limited by rapid charge carrier recombination and limited active site accessibility. This work aims to improve ZIS's photocatalytic efficiency by incorporating iron (Fe 3 + ) doping and engineering its morphology. A straightforward hydrothermal method produced flower‐like hierarchical Fe‐doped ZIS photocatalysts. The Fe 3 + ions enhanced charge separation by altering the electrical structure of ZIS and creating beneficial defect sites. Doping and the well‐defined, flower‐like shape, which increase the surface area and reactive sites for photocatalysis, were confirmed through structural and optical characterizations. Photocatalytic hydrogen evolution tests showed improved performance with optimized Fe‐doped ZIS, reaching 5489 µmol·g − 1 ·h − 1 compared to 1422 µmol·g − 1 ·h − 1 for pure ZIS under visible light. The hierarchical structure and Fe doping, which improve light harvesting and charge dynamics, are responsible for this enhancement. This study shows that transition‐metal doping and morphological design can boost ZIS's photocatalytic activity in a scalable way. These findings highlight materials with high performance for solar hydrogen production, supporting progress towards more sustainable energy solutions.
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