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Photocatalytic mechanism of high-activity anatase TiO2 with exposed (001) facets from molecular-atomic scale: HRTEM and Raman studies |
Jun WU1, Chentian SHI1, Yupeng ZHANG2,3( ), Qiang FU1,4, Chunxu PAN1,4( ) |
1. School of Physics and Technology, and MOE Key Laboratory of Artificial Micro- and Nano-structures, Wuhan University, Wuhan 430072, China 2. College of Electronic Science and Technology, Shenzhen University, Shenzhen 518000, China 3. Department of Materials Science and Engineering, Monash University, Victoria 3800, Australia 4. Center for Electron Microscopy, Wuhan University, Wuhan 430072, China |
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Abstract Anatase TiO2 with a variant percentage of exposed (001) facets was prepared under hydrothermal processes by adjusting the volume of HF, and the photocatalytic mechanism was studied from atomic-molecular scale by HRTEM and Raman spectroscopy. It was revealed that: 1) From HRTEM observations, the surface of original TiO2 with exposed (001) facets was clean without impurity, and the crystal lattice was clear and completed; however, when mixed with methylene blue (MB) solution, there were many 1 nm molecular absorbed at the surface of TiO2; after the photocatalytic experiment, MB molecules disappeared and the TiO2 lattice image became fuzzy. 2) The broken path of the MB chemical bond was obtained by Raman spectroscopy, i.e., after the irradiation of the light, the vibrational mode of C−N−C disappeared due to the chemical bond breakage, and the groups containing C−N bond and carbon rings were gradually decomposed. Accordingly, we propose that the driving force for breaking the chemical bond and the disappearance of groups is from the surface lattice distortion of TiO2 during photocatalyzation.
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| Keywords
TiO2
exposed (001) facets
HRTEM
Raman spectroscopy
photocatalytic degradation mechanism
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Corresponding Author(s):
Yupeng ZHANG,Chunxu PAN
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Online First Date: 31 October 2017
Issue Date: 29 November 2017
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