An Xiaoqiang, Wang Wei, Wang Jiangpeng, Duan Haozhi, Shi Jintao, Yu Xuelian
Key Laboratory of Drinking Water Science and Technology, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing 100085, China.
Phys Chem Chem Phys. 2018 Apr 25;20(16):11405-11411. doi: 10.1039/c8cp01123k.
Co-catalyst loading provides an effective way to enhance the efficiency of photocatalysts for solar hydrogen production. From a sustainability point of view, it has immense scientific and technological values to explore more efficient co-catalytic systems by using multi-cocatalysts, because of potential synergetic effects between different components. Herein, the feasibility of using Ti3C2 MXene nanoparticles and Pt nanoclusters as dual co-catalysts to enhance the photoactivity of g-C3N4 for H2 production was investigated. Due to the improved electrical conductivity and increased reactive sites for photoreduction reactions, Ti3C2 and Pt co-modified photocatalysts exhibited a high photocatalytic hydrogen production activity of 5.1 mmol h-1 g-1. Compared to g-C3N4/Ti3C2 and g-C3N4/Pt, the 3- and 5-fold increased photoactivity demonstrated great potential of Ti3C2 MXene nanoparticles to construct high-performance photocatalysts. The synergetic effects between Ti3C2 and Pt were fundamentally investigated, indicating that the specific transfer of electrons not only contributed to the inhibited recombination of charge carriers but also resulted in good stability of heterostructured photocatalysts. Our results have demonstrated an approach worthy for the design and fabrication of high-efficiency heterostructures with superior photoactivity for hydrogen energy production.
助催化剂负载为提高光催化剂用于太阳能制氢的效率提供了一种有效方法。从可持续性的角度来看,由于不同组分之间可能存在协同效应,探索使用多助催化剂的更高效助催化体系具有巨大的科学和技术价值。在此,研究了使用Ti3C2 MXene纳米颗粒和Pt纳米团簇作为双助催化剂来增强g-C3N4产氢光活性的可行性。由于改善了电导率并增加了光还原反应的活性位点,Ti3C2和Pt共改性的光催化剂表现出5.1 mmol h-1 g-1的高光催化产氢活性。与g-C3N4/Ti3C2和g-C3N4/Pt相比,光活性提高了3倍和5倍,这表明Ti3C2 MXene纳米颗粒在构建高性能光催化剂方面具有巨大潜力。从根本上研究了Ti3C2和Pt之间的协同效应,表明电子的特定转移不仅有助于抑制电荷载流子的复合,还导致异质结构光催化剂具有良好的稳定性。我们的结果展示了一种值得用于设计和制造具有卓越光活性的高效异质结构以用于氢能生产的方法。