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Mechanisms of Positive Electric-Field-Enhanced Ti/Anatase TiO2 (1 0 1) Interfacial Adsorption of Ozone-Inert Pollutants: A Density Functional Theory Studyopen access

Authors
Li, XinyangShen, ZhenLv, JingfeiLv, ZhangzengyeYao, YanchengLiu, GuichengYao, Hong
Issue Date
Dec-2023
Publisher
American Chemical Society
Keywords
emerging contaminant; enhanced adsorption; positive electric field; Ti/TiO2 anatase (1 0 1) surface; surface site-(H2O)(2)
Citation
ACS ES&T Engineering, v.3, no.12, pp 2202 - 2212
Pages
11
Indexed
SCOPUS
ESCI
Journal Title
ACS ES&T Engineering
Volume
3
Number
12
Start Page
2202
End Page
2212
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/21115
DOI
10.1021/acsestengg.3c00052
ISSN
2690-0645
2690-0645
Abstract
In heterogeneous advanced oxidation processes (AOPs), rapid capture and enhanced adsorption of trace pollutants are prerequisites for effective degradation and mineralization. Here, we propose a novel strategy for using an applied positive electric field to enhance the interfacial adsorption of emerging contaminants (ECs). Density functional theory calculations were used to systematically investigate the effects of the electric field intensity (E) and adsorption site on the adsorption energy (E (ads)) of ozone-inert ECs when Ti/anatase TiO2 (1 0 1) was used as an interface. Electronic structure and orbital composition analyses were used to further elucidate the mechanism underlying the enhanced interaction between ECs and reaction sites. The results confirmed that the applied positive electric field significantly increased the E (ads) of ECs. Double water molecule sites =(H2O)(2) were more favorable for interfacial adsorption than bihydroxyl group =(OH)(2) sites because the applied positive electric field enhanced the charge enrichment by promoting charge transfer and orbital hybridization between =(H2O)(2) and ECs, thereby forming new bonds with lower Fermi energy levels and ultimately enhancing EC adsorption. Our results offer new insights into the enhanced adsorption of ECs to promote the decontamination efficiency of heterogeneous AOPs and provide a theoretical basis for conducting related experimental studies.
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