4.4 Article

Synthesis of N and S Co-doped TiO2Nanotubes for Advanced Photocatalytic Degradation of Volatile Organic Compounds (VOCs) in Gas Phase

Journal

TOPICS IN CATALYSIS
Volume 63, Issue 11-14, Pages 1077-1085

Publisher

SPRINGER/PLENUM PUBLISHERS
DOI: 10.1007/s11244-020-01347-3

Keywords

N@S co-doping; Nanotubes; Hydrothermal; TiO2; Vocs removal

Funding

  1. Hanoi Department of Science and Technology [01C-09/04-2018-3]

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In this study, sol-gel combining with hydrothermal methods were successfully used to synthesize N and S co-doped TiO(2)nanotubes (N@S-TiO2NTT) for efficient photocatalytic degradation of volatile organic compounds (VOCs). The obtained characterization results indicated that the synthesized N@S co-doped TiO(2)existed as nanotubes. Specific surface areas of these synthesized nanotubes was greatly that of these nanoparticles. The largest surface area recorded at N@S-TiO(2)nanotubes was 105.3 m(3)/g. FTIR spectrum results showed that the presence of N-H and S-O bond, which confirmed that nitrogen and sulfur were successfully doped into TiO(2)lattice. We also investigated that N@S dopants significantly improved the photocatalytic activity of TiO(2)nanotubes for efficient degradation of gaseous VOCs. Therefore, photocatalytic activity for VOCs degradation by the N@S-TiO(2)nanotubes was greater than that by the undoped TiO(2)nanotube. Optimized humidity for degradation of VOCs was medium condition (55-70%). Under dry conditions, lack of water for hydroxyl radical production led to decrease in photocatalytic activity. Under humidity conditions, the excess water molecules competed with VOCs for adsorbing on material surface leading to decrease in photocatalytic degradation efficiency. Under the optimized humidity, the highest photocatalytic efficiency of the synthesized N@S-TiO(2)nanotubes for degradation of gaseous VOCs for 3 h was approximately 94%. The VOCs degradation capacity by the synthesized N@S-TiO(2)nanotubes was approximately 90 (ppm/g h).

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