Jiang Denghui, Liu Ziran, Fu Liangjie, Yang Huaming
Centre for Mineral Materials, School of Minerals Processing and Bioengineering , Central South University , Changsha 410083 , China.
Department of Physics, Key Lab for Low-Dimensional Structures and Quantum Manipulation (Ministry of Education) , Hunan Normal University , Changsha 410081 , China.
ACS Appl Mater Interfaces. 2020 Feb 26;12(8):9872-9880. doi: 10.1021/acsami.9b17183. Epub 2020 Feb 13.
Interface engineering of heterostructured photocatalysts plays a very important role in the transfer and separation process of interfacial charge carriers, but how to regulate the transfer and separation of photogenerated charge carriers still is a huge challenge at the nanometric interface of heterostructures (HCs). Herein, we demonstrate that interfacial chemical bonds can effectively modulate photogenerated charge transfer in nanoclay-based HCs constructed by natural Kaolinite (Kaol) nanosheets and P25-TiO. Experimental results and density functional theory (DFT) calculations confirm that stable Al-O-Ti bonds form at the interfaces by interactions of the Al-OH groups of Kaol and (101) surfaces of anatase TiO. The Al-O-Ti bond strengthens the energy band bending of the space charge region near the interfacial bond and thus provides a fast transfer channel for interfacial photogenerated charge, resulting in the boosted charge transfer and separation ability of Kaol/P25 HCs. The findings reported here provide a deeper insight into modulating interfacial charge transfer by chemical bonds and shed new light on interface engineering of efficient heterostructured photocatalysts for environmental applications.
异质结构光催化剂的界面工程在界面电荷载流子的转移和分离过程中起着非常重要的作用,但是如何调控光生电荷载流子的转移和分离在异质结构(HCs)的纳米界面上仍然是一个巨大的挑战。在此,我们证明了界面化学键可以有效地调节由天然高岭土(Kaol)纳米片和P25-TiO构建的基于纳米粘土的HCs中的光生电荷转移。实验结果和密度泛函理论(DFT)计算证实,通过高岭土的Al-OH基团与锐钛矿TiO的(101)表面之间的相互作用,在界面处形成了稳定的Al-O-Ti键。Al-O-Ti键增强了界面键附近空间电荷区的能带弯曲,从而为界面光生电荷提供了一个快速转移通道,导致高岭土/P25 HCs的电荷转移和分离能力增强。本文报道的研究结果为通过化学键调控界面电荷转移提供了更深入的见解,并为用于环境应用的高效异质结构光催化剂的界面工程提供了新的思路。