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光催化氨合成的最新进展:材料设计与机理洞察

Recent advances in photocatalytic ammonia synthesis: materials design and mechanistic insights.

作者信息

Zuo Haipeng, Zhou Hao, Lin Bo, Jiang Wei, Di Jun

机构信息

School of Chemistry and Chemical Engineering, National Special Superfine Powder Engineering Research Center, Nanjing University of Science and Technology, Nanjing, 210094, China.

XJTU-Oxford International Joint Laboratory for Catalysis, School of Chemical Engineering and Technology, Xi'an Jiaotong University, 710049 Xi'an, China.

出版信息

Nanoscale. 2025 Aug 28;17(34):19496-19527. doi: 10.1039/d5nr02673c.

Abstract

Ammonia, a core raw material for the global agricultural and chemical industries, faces serious challenges in its conventional synthesis process (the Haber-Bosch method) due to its high energy consumption, high carbon emissions and dependence on fossil fuels. Photocatalytic ammonia synthesis technology provides a revolutionary solution for green ammonia economy by realizing efficient nitrogen reduction under mild conditions with solar energy as the driving force. In this study, we systematically review the mechanism of photocatalytic nitrogen reduction reaction, focusing on the adsorption activation of nitrogen molecules, electron transfer pathways, and intermediate product regulation strategies, and review multiple types of photocatalyst systems including metal oxides, sulfides, bismuth-based materials, and carbon-based materials. Modification strategies such as defect engineering, single-atom modification, heterojunction design and plasma effect can significantly optimize the light absorption range, suppress the carrier recombination and enhance the active site density. It is further pointed out that the existing catalytic systems still face bottlenecks such as low quantum efficiency, photocorrosion, and scale-up reactor design, and future studies are needed to promote the photocatalytic synthesis of ammonia from the laboratory to the industry through multiscale synergistic innovation. This study provides theoretical guidance and a practical framework for the design and development of an efficient and stable photocatalytic ammonia synthesis system, which is scientifically important for achieving the goal of carbon neutrality.

摘要

氨是全球农业和化学工业的核心原材料,由于其传统合成工艺(哈伯-博施法)存在高能耗、高碳排放以及对化石燃料的依赖等问题,面临着严峻挑战。光催化氨合成技术以太阳能为驱动力,在温和条件下实现高效氮还原,为绿色氨经济提供了一种革命性的解决方案。在本研究中,我们系统地综述了光催化氮还原反应的机理,重点关注氮分子的吸附活化、电子转移途径以及中间产物调控策略,并综述了包括金属氧化物、硫化物、铋基材料和碳基材料在内的多种光催化剂体系。缺陷工程、单原子修饰、异质结设计和等离子体效应等改性策略可显著优化光吸收范围、抑制载流子复合并提高活性位点密度。进一步指出,现有催化体系仍面临量子效率低、光腐蚀和放大反应器设计等瓶颈,未来需要通过多尺度协同创新推动光催化氨合成从实验室走向工业应用。本研究为高效稳定的光催化氨合成系统的设计与开发提供了理论指导和实践框架,对实现碳中和目标具有重要科学意义。

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