School of Chemistry and Chemical Engineering, Ningxia Key Laboratory of Solar Chemical Conversion Technology, Key Laboratory for Chemical Engineering and Technology, State Ethnic Affairs Commission, North Minzu University, Yinchuan 750021, P. R. China.
Langmuir. 2023 Jul 18;39(28):9816-9830. doi: 10.1021/acs.langmuir.3c00955. Epub 2023 Jun 30.
As a new two-dimensional (2D) carbon hybrid material, graphdiyne has attracted much attention due to its good conductivity, adjustable electronic structure, and special electron transfer enhancement properties. In this work, graphdiyne/CuO and NiMoO/GDY/CuO composite catalysts were prepared by cross coupling method and high temperature annealing method. The CuI introduced by clever design not only acts as a catalytic coupling but also as a precursor of CuO. The CuO produced by the postprocessing improves the inefficient charge separation of graphdiyne and provides a good acceptor for the consumption of unwanted holes. The good conductivity and strong reduction ability of graphdiyne play key roles in the performance improvement of the composite catalyst. Under the dual evidence of XPS and in situ XPS, the charge transfer mode of double S-scheme heterojunction with graphdiyne as the active site of hydrogen evolution is constructed reasonably, which not only gives full play to the performance advantages of graphdiyne but also effectively improves the separation efficiency of photogenerated carriers. In this study, a clean and efficient multicomponent system was constructed by graphdiyne, which opened up a broad application prospect in the field of photocatalytic hydrogen production.
作为一种新型二维(2D)碳杂化材料,由于其良好的导电性、可调谐的电子结构和特殊的电子转移增强特性,石墨炔引起了广泛关注。在这项工作中,通过交叉偶联法和高温退火法制备了石墨炔/CuO 和 NiMoO4/GDY/CuO 复合催化剂。巧妙设计引入的 CuI 不仅充当催化偶联剂,而且充当 CuO 的前体。后处理产生的 CuO 提高了石墨炔的低效电荷分离,并为消耗不需要的空穴提供了良好的受体。石墨炔的良好导电性和强还原能力在复合催化剂的性能提高中发挥了关键作用。在 XPS 和原位 XPS 的双重证据下,合理构建了以石墨炔为析氢活性位的双 S 型异质结电荷转移模式,不仅充分发挥了石墨炔的性能优势,而且有效提高了光生载流子的分离效率。在这项研究中,通过石墨炔构建了一个清洁高效的多组分体系,为光催化制氢领域开辟了广阔的应用前景。