Li Houfen, Yu Hongtao, Quan Xie, Chen Shuo, Zhang Yaobin
Key Laboratory of Industrial Ecology and Environmental Engineering (Ministry of Education), School of Environmental Science and Technology, Dalian University of Technology , Dalian 116024, China.
ACS Appl Mater Interfaces. 2016 Jan 27;8(3):2111-9. doi: 10.1021/acsami.5b10613. Epub 2016 Jan 12.
Z-scheme photocatalytic system shows superiority in degradation of refractory pollutants and water splitting due to the high redox capacities caused by its unique charge transfer behaviors. As a key component of Z-scheme system, the electron mediator plays an important role in charge carrier migration. According to the energy band theory, we believe the interfacial energy band bendings facilitate the electron transfer via Z-scheme mechanism when the Fermi level of electron mediator is between the Fermi levels of Photosystem II (PS II) and Photosystem I (PS I), whereas charge transfer is inhibited in other cases as energy band barriers would form at the semiconductor-metal interfaces. Here, this inference was verified by the increased hydroxyl radical generation and improved photocurrent on WO3-Cu-gC3N4 (with the desired Fermi level structure), which were not observed on either WO3-Ag-gC3N4 or WO3-Au-gC3N4. Finally, photocatalytic degradation rate of 4-nonylphenol on WO3-Cu-gC3N4 was proved to be as high as 11.6 times than that of WO3-gC3N4, further demonstrating the necessity of a suitable electron mediator in Z-scheme system. This study provides scientific basis for rational construction of Z-scheme photocatalytic system.
Z 型光催化体系因其独特的电荷转移行为所导致的高氧化还原能力,在难降解污染物的降解和水分解方面表现出优越性。作为 Z 型体系的关键组成部分,电子介质在电荷载流子迁移中起着重要作用。根据能带理论,我们认为当电子介质的费米能级处于光系统 II(PS II)和光系统 I(PS I)的费米能级之间时,界面能带弯曲有利于通过 Z 型机制进行电子转移,而在其他情况下,由于半导体 - 金属界面会形成能带势垒,电荷转移会受到抑制。在此,这一推断通过 WO3 - Cu - gC3N4(具有所需的费米能级结构)上羟基自由基生成的增加和光电流的改善得到了验证,而在 WO3 - Ag - gC3N4 或 WO3 - Au - gC3N4 上均未观察到这种情况。最后,WO3 - Cu - gC3N4 对 4 - 壬基酚的光催化降解率被证明比 WO3 - gC3N4 高达 11.6 倍,进一步证明了 Z 型体系中合适的电子介质的必要性。本研究为合理构建 Z 型光催化体系提供了科学依据。