Lu Kang-Qiang, Qi Ming-Yu, Tang Zi-Rong, Xu Yi-Jun
State Key Laboratory of Photocatalysis on Energy and Environment, College of Chemistry , Fuzhou University , Fuzhou 350116 , P. R. China.
College of Chemistry, New Campus , Fuzhou University , Fuzhou 350116 , P. R. China.
Langmuir. 2019 Aug 27;35(34):11056-11065. doi: 10.1021/acs.langmuir.9b01409. Epub 2019 Aug 13.
Cocatalysts play a significant role in accelerating the catalytic reactions of semiconductor photocatalyst. In particular, a semiconductor assembled with dual cocatalysts, i.e., reduction and oxidation cocatalysts, can obviously enhance the photocatalytic performance because of the synergistic effect of fast consumption of photogenerated electrons and holes simultaneously. However, in most cases, noble metal cocatalysts are employed, which tremendously increases the cost of the photocatalysts and restricts their large-scale applications. Herein, on the platform of one-dimensional (1D) CdS nanowires, we have utilized the earth-abundant dual cocatalysts, MoS and cobalt phosphate (Co-Pi), to construct the CdS@MoS@Co-Pi (CMC) core-shell hybrid photocatalysts. In this dual-cocatalyst system, Co-Pi is in a position to expedite the migration of holes from CdS, while MoS acts as an electron transporter as well as active sites to accelerate the surface water reduction reaction. Taking the advantages of the dual-cocatalyst system, the prepared CMC hybrid shows an obvious enhancement of both the photoactivity and photostability toward hydrogen production compared with bare 1D CdS nanowires and binary hybrids (CdS@MoS and CdS@Co-Pi). This work highlights the promising prospects for rational utilization of earth-abundant dual cocatalysts to design low-cost and efficient hybrids toward boosting photoredox catalysis.
助催化剂在加速半导体光催化剂的催化反应中起着重要作用。特别是,组装有双助催化剂(即还原和氧化助催化剂)的半导体,由于光生电子和空穴同时快速消耗的协同效应,能够显著提高光催化性能。然而,在大多数情况下,使用的是贵金属助催化剂,这极大地增加了光催化剂的成本并限制了它们的大规模应用。在此,在一维(1D)硫化镉纳米线平台上,我们利用储量丰富的双助催化剂二硫化钼(MoS)和磷酸钴(Co-Pi)构建了硫化镉@二硫化钼@磷酸钴(CMC)核壳杂化光催化剂。在这个双助催化剂体系中,Co-Pi能够加速空穴从硫化镉的迁移,而MoS既作为电子传输体又作为活性位点来加速表面水还原反应。利用双助催化剂体系的优势,与裸露的一维硫化镉纳米线和二元杂化物(硫化镉@二硫化钼和硫化镉@Co-Pi)相比,制备的CMC杂化物在光催化产氢的光活性和光稳定性方面都有明显提高。这项工作突出了合理利用储量丰富的双助催化剂来设计低成本且高效的杂化物以促进光氧化还原催化的广阔前景。