Morphology engineering ultrathin nitrogen-doped carbon Co-FeP derived from Co-Fe Prussian Blue Analogs for wide spectrum photocatalytic H2 evolution

光催化 普鲁士蓝 材料科学 分解水 化学工程 碳纤维 催化作用 带隙 光催化分解水 可见光谱 制氢 光化学 纳米技术 化学 光电子学 物理化学 有机化学 电化学 复合材料 电极 工程类 复合数
作者
Zenghui Hu,Xuqiang Hao,Zhiliang Jin
出处
期刊:Fuel [Elsevier BV]
卷期号:333: 126336-126336 被引量:25
标识
DOI:10.1016/j.fuel.2022.126336
摘要

The design and development of economical, efficient and stable photocatalyst for photocatalytic hydrogen evolution is a frontier subject of sustainable energy research. In this work, a morphology engineered ultrathin nitrogen-doped carbon Co-FeP ([email protected]) derived from Co-Fe Prussian Blue Analogs (Co-Fe PBA) for wide spectrum photocatalytic hydrogen evolution. We demonstrate the versatility of a self-templated epitaxial growth strategy for construction of single-crystalline hollow nanostructured PBA (Co-Fe PBA cages, frames and boxes) with different geometries by adjusting the growth kinetics. [email protected] photocatalysts have tunable band structures by adjusted phosphating degree and all have a narrow band gap. In addition, the catalysts with different morphologies have different electronic structures, and surface nitrogen-doped carbon layer increases electron transfer rate, which makes the photocatalytic hydrogen evolution activity increase significantly. The [email protected] cages exhibit the highest photocatalytic hydrogen evolution rate of 13309.4 μmol h−1 g−1 under visible light irradiation with EY as a photosensitizer and TEOA as an electron donor. Additionally, a high apparent quantum efficiency (8.38 % at 520 nm) and an excellent cycle stability was also achieved over [email protected] cages. The larger specific surface area, strong light absorption ability and fast photogenerated electron-hole pairs separation efficiency of [email protected] cages may be responsible for the significantly improved photocatalytic hydrogen evolution activity. This work has provided an effective strategy for synthesis of nanostructures with different geometric topologies derived from PBA and recognizing their morphology-dependent photocatalytic activity.

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