光催化
材料科学
制氢
生化工程
纳米技术
太阳能
化石燃料
经济短缺
生产(经济)
环境污染
可持续设计
吸收(声学)
高效能源利用
太阳能转换
氢燃料
工艺工程
能源消耗
分解水
生产成本
合理设计
清洁能源
可再生能源
持续性
环境科学
作者
Mengxi Tan,Jing Chen,Zenghui Zhang,Lushan Ma,Luhan Wang,Yang Li,Yang Bai
标识
DOI:10.26599/jac.2026.9221241
摘要
Photocatalytic green hydrogen (H2) production technology, as a clean technology that replaces traditional fossil fuel-based H2 production, has emerged as a research focus in addressing energy shortages and environmental pollution due to its unique advantage of being driven by solar energy. In recent years, remarkable advancements have been made in the design of photocatalyst and the investigation of reaction mechanism, but the restricted light absorption range, high recombination rate of photogenerated carriers, and insufficient stability are still serious constraints on the increase of energy conversion efficiency. The development of high-performance photocatalysts is crucial for achieving efficient solar-to-hydrogen conversion. This review deeply analyzes the fundamental principles of photocatalytic green H2 production from three dimensions: optimization of light absorption performance, regulation of charge dynamics, and enhancement of surface reaction kinetics. It systematically reviews the recent research achievements in this field and deeply deconstructs the design strategies of photocatalysts, aiming to provide references for the rational design of ideal photocatalysts and more in-depth mechanism analysis. Finally, the future research directions and potential breakthroughs are discussed, with the aim of accelerating the development and practical application of solar-driven green H2 production technology.
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