Electric-Dipole Effect of Defects on Energy Band Alignment of Rutile and Anatase TiO2
arXiv:1511.02278 · doi:10.1039/c5cp04495b
Abstract
Titanium dioxide materials have been studied intensively and extensively due to photocatalytic applications. A long-standing open question is the energy band alignment of rutile and anatase TiO2 phases, which can affect the photocatalytic process in the composite system. There are basically two contradictory viewpoints about the alignment of these two TiO2 phases supported by respective experiments: 1) straddling type and 2) staggered type. In this work, our DFT plus U calculations find that the perfect rutile (110) and anatase (101) surfaces have the straddling type band alignment, whereas the surfaces with defects can turn the band alignment into the staggered type. The electric dipoles induced by defects are responsible for the reversal of band alignment. Thus the defects introduced during preparations and post-treatment processes of materials are probably the answer to above open question regarding the band alignment, which can be considered in real practice to tune the photocatalytic activity of materials.
12 pages, 4 figures
References in corpus (4)
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- Hydroxylation of Rutile TiO (110) Surface Enhancing Its Reducing Power for Photocatalysis
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- Photocatalytic Behavior of Fluorinated Rutile TiO(110) Surface: Understanding from the Band Model
- Translating XPS Measurement Procedure for Band Alignment into Reliable Ab-initio Calculation Method
- Monolayer C networks: A first-principles perspective
- Band restructuring of ordered/disordered blue TiO2 for visible photocatalyst