Improvement of water resistance by FeO/TiO photoelectrocatalysts for formaldehyde removal: experimental and theoretical investigation.

Jing Dong, Qing Li, Wenjie Xia, Bihong Lv, Guohua Jing, Huazhen Shen, Chung-Shin Yuan

Journal: Environmental science and pollution research international 2022;29(10):13805-13821

PMID: 34599445

Abstract

TiO-based photocatalysts are a potential technology for removing indoor formaldehyde (CHOH) owing to their strong photooxidation ability. However, their photooxidation performance is generally weakened when suffering from the competitive adsorption of HO. In a method inspired by the oxygen evolution reaction (OER) to generate intermediates with hydroxyl radicals on the anode electrode catalysts, an electric field was employed in this research and applied to the photooxidation of CHOH to prevent the competitive adsorption of HO. Additionally, 0.5-5% FeO decorated TiO was employed to improve the photoelectrocatalytic activity. The influence of an electric field on hydroxyl-radical production was investigated by both density functional theory (DFT) with direct-imposed dipole momentum and photoelectrocatalytic experimental tests. The surface characterization of the photocatalysts, including transmission electron microscopy (TEM), X-ray photoelectron spectroscopy (XPS), and electron paramagnetic resonance (EPR), was conducted. DFT results show that a positive electric field with a strength of 0.05 Å/V was more favorable to produce hydroxyl on FeO/TiO(010) than was a negative electric field. FeO decoration can significantly boost hydroxyl formation, resulting from a decrease in the binding energy between the Fe of FeO and the oxygen and hydrogen atoms of HO. The dissociated hydrogen atom of the HO preferentially remained on the catalysts' surface rather than being released into the gas flow. The experimental results demonstrated that applying 150 V could not directly enhance the photooxidation of CHOH by either TiO or FeO/TiO but that it could relieve the HO inhibitory effect by more than 10% on the FeO/TiO.

© 2021. The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature.

Address: College of Chemical Engineering, Huaqiao University, Xiamen, Fujian, People's Republic of China.; Department of Civil and Environmental Engineering, North Dakota State University, Fargo, ND, USA.; College of Chemical Engineering, Huaqiao University, Xiamen, Fujian, People's Republic of China. [email protected].; Institute of Environmental Engineering, National Sun Yat-sen University, No. 70, Lian-Hai Road, Kaohsiung, 804, Taiwan.

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