Indexed by:期刊论文
Date of Publication:2016-12-15
Journal:CHEMICAL ENGINEERING JOURNAL
Included Journals:SCIE、EI、Scopus
Volume:306
Page Number:1001-1009
ISSN No.:1385-8947
Key Words:Photocatalytic oxidation; Formaldehyde; Amorphous titania; Anatase
Abstract:As alternative photocatalysts, titania semiconductors have been extensively investigated for energy and environmental applications. However, amorphous titania is often considered not to be photoreactive catalyst. Here we demonstrate an amorphous titania thin film deposited at room temperature for a photo catalytic removal of formaldehyde from air, which features abundant hydroxyl groups and large surface area. Amorphous titania exhibited surprisingly higher apparent quantum yield of 60.4% than crystalline titania (the most active anatase). This exceptional activity is attributed to greatly reduced recombination of electron-hole pairs and abundant adsorption sites towards formaldehyde. The reduced recombination should result from rapid electron transfer along conduction band (>(TiOH)-O-III) that allocates abundant terminal hydroxyl groups, and minimized transfer length from bulk to surface in small particles. The abundant adsorption sites are related to surface hydroxyl groups and large surface area. With the exceptional activity, amorphous titania nanofilm achieved at room temperature substantively enables photocatalysis on heat-susceptible substrates, while it is nearly impossible for crystalline films calcined at high temperature. (C) 2016 Elsevier B.V. All rights reserved.
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Associate Professor
Supervisor of Master's Candidates
Gender:Male
Alma Mater:Dalian Institute of Chemical Physics, CAS
Degree:Doctoral Degree
School/Department:Department of Chemical Engineering, Panjin
Discipline:Chemical Engineering. Physical Chemistry (including Chemical Physics)
Business Address:Center for Hydrogen Energy and Environmental Catalysis
Laboratory of Plasma Physical Chemistry
Dalian University of Technology
2 Linggong Road, Dalian 116024, China
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