Jia Jia, Bai Xue, Zhang Qiqi, Hu Xiaoyun, Liu Enzhou, Fan Jun
School of Chemical Engineering, Northwest University, Xi'an 710069, P. R. China.
Nanoscale. 2020 Mar 7;12(9):5636-5651. doi: 10.1039/c9nr09757k. Epub 2020 Feb 26.
Heterojunction construction of semiconductors with a matched bandgap can not only help promote visible light absorption but also restrain photoexcited charge carrier recombination and optimize the separation efficiency. Herein, a novel porous honeycomb-like NiSe/RP heterostructure is reported for the first time by in situ deposition of NiSe nanoparticles on the surface of red phosphorus (RP). The optimized binary NiSe/RP composite showed superior photocatalytic H evolution activity (1968.8 μmol g h) from NaS/NaSO solution under solar light illumination, which was 2.32, 1.90, 1.59 and 1.21 times that of pristine RP, NiSe, 5.3% FeS/RP and 8.1% NiS/RP, respectively. The formation process and function of various reactive oxygen species (˙OH, ˙O and HO), and the migration pathway of photocarriers are discussed in detail. Such a prominently improved photocatalytic performance could be ascribed to extended light absorption ability, massive reactive centers and lower interfacial transfer resistance, together with expedited charge separation, which arose from a successive two-electron/two-step reduction route. This study provides illuminating insights for the rational exploration and fabrication of potential photocatalytic systems with 0D/3D integrated nanoarchitecture and a multi-step electron transfer process for efficiently realizing solar energy capture and conversion.
构建具有匹配带隙的半导体异质结不仅有助于促进可见光吸收,还能抑制光生电荷载流子的复合并优化分离效率。在此,通过在红磷(RP)表面原位沉积NiSe纳米颗粒,首次报道了一种新型的多孔蜂窝状NiSe/RP异质结构。优化后的二元NiSe/RP复合材料在太阳光照射下,从NaS/NaSO溶液中表现出优异的光催化析氢活性(1968.8 μmol g h),分别是原始RP、NiSe、5.3% FeS/RP和8.1% NiS/RP的2.32倍、1.90倍、1.59倍和1.21倍。详细讨论了各种活性氧物种(˙OH、˙O和HO)的形成过程和功能以及光载流子的迁移途径。这种显著提高的光催化性能可归因于扩展的光吸收能力、大量的反应中心和较低的界面转移电阻,以及由于连续的双电子/两步还原途径而加速的电荷分离。该研究为合理探索和制备具有0D/3D集成纳米结构和多步电子转移过程的潜在光催化系统提供了有启发性的见解,以有效地实现太阳能的捕获和转换。