Jia Le, Ma Nan, Shao Panpan, Ge Yanqing, Liu Jinhong, Dong Wen, Song Huaxuan, Lu Chunhui, Zhou Yixuan, Xu Xinlong
Shaanxi Joint Lab of Graphene, State Key Laboratory of Photon-Technology in Western China Energy, International Collaborative Center on Photoelectric Technology and Nano Functional Materials, Institute of Photonics & Photon-Technology, School of Physics, Northwest University, Xi'an, 710069, China.
Small. 2024 Nov;20(45):e2404622. doi: 10.1002/smll.202404622. Epub 2024 Jul 26.
Inspired by natural photosynthesis, the visible-light-driven Z-scheme system is very effective and promising for boosting photocatalytic hydrogen production and pollutant degradation. Here, a synergistic Z-scheme photocatalyst is constructed by coupling ReS nanosheet and ZnInS nanoflower and the experimental evidence for this direct Z-scheme heterostructure is provided by X-ray photoelectron spectroscopy, ultraviolet photoelectron spectroscopy, and electron paramagnetic resonance. Consequently, such a unique nanostructure makes this Z-scheme heterostructure exhibit 23.7 times higher photocatalytic hydrogen production than that of ZnInS nanoflower. Moreover, the ZnInS/ReS photocatalyst is also very stable for photocatalytic hydrogen evolution, almost without activity decay even storing for two weeks. Besides, this Z-scheme heterostructure also exhibits superior photocatalytic degradation rates of methylene blue (1.7 × 10 min) and mitoxantrone (4.2 × 10 min) than that of ZnInS photocatalyst. The ultraviolet-visible absorption spectra, transient photocurrent spectra, open-circuit potential measurement, and electrochemical impedance spectroscopy reveal that the superior photocatalytic performance of ZnInS/ReS heterostructure is mostly attributed to its broad and strong visible-light absorption, effective separation of charge carrier, and improved redox ability. This work provides a promising nanostructure design of a visible-light-driven Z-scheme heterostructure to simultaneously promote photocatalytic reduction and oxidation activity.
受自然光合作用的启发,可见光驱动的Z型体系对于促进光催化产氢和污染物降解非常有效且具有前景。在此,通过耦合ReS纳米片和ZnInS纳米花构建了一种协同Z型光催化剂,并通过X射线光电子能谱、紫外光电子能谱和电子顺磁共振提供了这种直接Z型异质结构的实验证据。因此,这种独特的纳米结构使该Z型异质结构的光催化产氢活性比ZnInS纳米花高23.7倍。此外,ZnInS/ReS光催化剂对于光催化析氢也非常稳定,即使储存两周几乎也没有活性衰减。此外,这种Z型异质结构对亚甲基蓝(1.7×10分钟)和米托蒽醌(4.2×10分钟)的光催化降解速率也比ZnInS光催化剂更高。紫外可见吸收光谱、瞬态光电流光谱、开路电位测量和电化学阻抗谱表明,ZnInS/ReS异质结构优异的光催化性能主要归因于其宽且强的可见光吸收、电荷载流子的有效分离以及氧化还原能力的提高。这项工作为可见光驱动的Z型异质结构提供了一种有前景的纳米结构设计,以同时促进光催化还原和氧化活性。