Ma Xiangchao, Wu Xin, Wang Yucheng, Dai Ying
School of Physics and Optoelectronic Engineering, Xidian University, Xi'an, 710071, China.
Phys Chem Chem Phys. 2017 Jul 19;19(28):18750-18756. doi: 10.1039/c7cp03453a.
Charge transfer across the Pt/TiO interface, which is mainly determined by the interface Schottky barrier height (SBH), is an important process in the (photo)catalytic and electronic applications of the Pt/TiO composite. Therefore, systematic investigation of the factors that affect the interface SBH is indispensable for understanding and optimizing its performance. In this work, a systematic study of the effects of the interfacial structure and strain on the SBH of the Pt/TiO(001) interface has been carried out based on the first-principles calculations. The results of interface adhesion energy show that two different interfacial structures for the Pt/TiO(001) heterointerface may exist experimentally, namely, O-Pt bonding and Ti-Pt bonding. Moreover, the interfacial structures result in not only different values for the SBH, but also different dependences of the SBH on strain. Detailed investigations show that these versatile modulations of the SBH with the structure and strain are mainly attributed to the strong dependence of the band edges of TiO and the interfacial potential alignments on the strain and structure, suggesting that these results are general and may be applicable to other metal/TiO heterostructures.
电荷在Pt/TiO界面间的转移主要由界面肖特基势垒高度(SBH)决定,这是Pt/TiO复合材料(光)催化及电子应用中的一个重要过程。因此,系统研究影响界面SBH的因素对于理解和优化其性能是必不可少的。在这项工作中,基于第一性原理计算,对界面结构和应变对Pt/TiO(001)界面SBH的影响进行了系统研究。界面粘附能的结果表明,Pt/TiO(001)异质界面在实验中可能存在两种不同的界面结构,即O-Pt键合和Ti-Pt键合。此外,界面结构不仅导致SBH值不同,还导致SBH对应变的依赖性不同。详细研究表明,SBH随结构和应变的这些多样调制主要归因于TiO的能带边缘以及界面势排列对应变和结构的强烈依赖性,这表明这些结果具有普遍性,可能适用于其他金属/TiO异质结构。