@article{scholars16563, year = {2022}, pages = {641--668}, journal = {Reviews in Chemical Engineering}, publisher = {De Gruyter Open Ltd}, doi = {10.1515/revce-2020-0022}, number = {6}, volume = {38}, note = {cited By 6}, title = {Electrospun-based TiO2nanofibers for organic pollutant photodegradation: A comprehensive review}, issn = {01678299}, author = {Hui, K. C. and Suhaimi, H. and Sambudi, N. S.}, keywords = {Fibers; Graphene; Light; Magnetic materials; Oxide minerals; Titanium dioxide, Calcination effects; Charge recombinations; Electron acceptor; Large surface area; Operation parameters; Photocatalytic reactors; Pollutant photodegradation; Titanium dioxides (TiO2), Organic pollutants}, url = {https://www.scopus.com/inward/record.uri?eid=2-s2.0-85099351562&doi=10.1515\%2frevce-2020-0022&partnerID=40&md5=b43ad33037b633be4a04041de6a7076e}, abstract = {Titanium dioxide (TiO2) is commonly used as a photocatalyst in the removal of organic pollutants. However, weaknesses of TiO2 such as fast charge recombination and low visible light usage limit its industrial application. Furthermore, photocatalysts that are lost during the treatment of pollutants create the problem of secondary pollutants. Electrospun-based TiO2 fiber is a promising alternative to immobilize TiO2 and to improve its performance in photodegradation. Some strategies have been employed in fabricating the photocatalytic fibers by producing hollow fibers, porous fibers, composite TiO2 with magnetic materials, graphene oxide, as well as doping TiO2 with metal. The modification of TiO2 can improve the absorption of TiO2 to the visible light area, act as an electron acceptor, provide large surface area, and promote the phase transformation of TiO2. The improvement of TiO2 properties can enhance carrier transfer rate which reduces the recombination and promotes the generation of radicals that potentially degrade organic pollutants. The recyclability of fibers, calcination effect, photocatalytic reactors used, operation parameters involved in photodegradation as well as the commercialization potential of TiO2 fibers are also discussed in this review. {\^A}{\copyright} 2020 Walter de Gruyter GmbH, Berlin/Boston.} }