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Photocatalytic Oxidation of PLA/TiO(2)-Composite Films for Indoor Air Purification

[Image: see text] Non-decomposable plastic has been replaced with polylactic acid, which is a biodegradable aliphatic polyester stationary phase, in composite films embedded with a TiO(2) photocatalyst for mitigation of indoor air pollution. PLA has superior properties relative to those of other bio...

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Autores principales: Chanklom, Pattamaphon, Kreetachat, Torpong, Chotigawin, Rotruedee, Suwannahong, Kowit
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8153744/
https://www.ncbi.nlm.nih.gov/pubmed/34056216
http://dx.doi.org/10.1021/acsomega.0c06194
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author Chanklom, Pattamaphon
Kreetachat, Torpong
Chotigawin, Rotruedee
Suwannahong, Kowit
author_facet Chanklom, Pattamaphon
Kreetachat, Torpong
Chotigawin, Rotruedee
Suwannahong, Kowit
author_sort Chanklom, Pattamaphon
collection PubMed
description [Image: see text] Non-decomposable plastic has been replaced with polylactic acid, which is a biodegradable aliphatic polyester stationary phase, in composite films embedded with a TiO(2) photocatalyst for mitigation of indoor air pollution. PLA has superior properties relative to those of other biopolymers, such as a relatively high melting point, crystallinity, and rigidity. This study aimed to incorporate TiO(2)-anatase into PLA for use as a photocatalyst using the blown film method. Photocatalytic oxidation, an advanced oxidative process, has been recognized as an economical technique providing convenience and efficiency with indoor air treatment. Therefore, the use of new environmentally friendly biodegradable polymers provides an alternative way to address the severe environmental concerns caused by non-decomposable plastics. UV–vis spectrophotometry and scanning electron microscopy–energy-dispersive X-ray spectroscopy (SEM–EDX) were used to observe the dispersibility and mixing capacity of the TiO(2)-anatase PLA matrix. TiO(2) dosages were 5, 10, and 15% (wt/wt), and they were incorporated with a twin-screw extruder. SEM–EDX images demonstrated the homogeneity of TiO(2) distribution in the PLA matrix. The energy band gaps of TiO(2) in the PLA/TiO(2)-composite films were between 3.14 and 3.22 eV. The relationship between the photocatalytic oxidation rate and the TiO(2) dosage in the PLA/TiO(2)-composite films was determined. A prototype reactor model is geared toward the development of air purifiers for indoor air conditioning. Rate constants for benzene degradation were obtained using first-order kinetics to find rate constants matching experimental findings. In the PLA/TiO(2)-composite film, the TiO(2)-anatase photocatalyst was able to degrade 5 ppm benzene. This work contributes to the use of ecoefficient photocatalytic oxidation.
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spelling pubmed-81537442021-05-27 Photocatalytic Oxidation of PLA/TiO(2)-Composite Films for Indoor Air Purification Chanklom, Pattamaphon Kreetachat, Torpong Chotigawin, Rotruedee Suwannahong, Kowit ACS Omega [Image: see text] Non-decomposable plastic has been replaced with polylactic acid, which is a biodegradable aliphatic polyester stationary phase, in composite films embedded with a TiO(2) photocatalyst for mitigation of indoor air pollution. PLA has superior properties relative to those of other biopolymers, such as a relatively high melting point, crystallinity, and rigidity. This study aimed to incorporate TiO(2)-anatase into PLA for use as a photocatalyst using the blown film method. Photocatalytic oxidation, an advanced oxidative process, has been recognized as an economical technique providing convenience and efficiency with indoor air treatment. Therefore, the use of new environmentally friendly biodegradable polymers provides an alternative way to address the severe environmental concerns caused by non-decomposable plastics. UV–vis spectrophotometry and scanning electron microscopy–energy-dispersive X-ray spectroscopy (SEM–EDX) were used to observe the dispersibility and mixing capacity of the TiO(2)-anatase PLA matrix. TiO(2) dosages were 5, 10, and 15% (wt/wt), and they were incorporated with a twin-screw extruder. SEM–EDX images demonstrated the homogeneity of TiO(2) distribution in the PLA matrix. The energy band gaps of TiO(2) in the PLA/TiO(2)-composite films were between 3.14 and 3.22 eV. The relationship between the photocatalytic oxidation rate and the TiO(2) dosage in the PLA/TiO(2)-composite films was determined. A prototype reactor model is geared toward the development of air purifiers for indoor air conditioning. Rate constants for benzene degradation were obtained using first-order kinetics to find rate constants matching experimental findings. In the PLA/TiO(2)-composite film, the TiO(2)-anatase photocatalyst was able to degrade 5 ppm benzene. This work contributes to the use of ecoefficient photocatalytic oxidation. American Chemical Society 2021-04-19 /pmc/articles/PMC8153744/ /pubmed/34056216 http://dx.doi.org/10.1021/acsomega.0c06194 Text en © 2021 The Authors. Published by American Chemical Society Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Chanklom, Pattamaphon
Kreetachat, Torpong
Chotigawin, Rotruedee
Suwannahong, Kowit
Photocatalytic Oxidation of PLA/TiO(2)-Composite Films for Indoor Air Purification
title Photocatalytic Oxidation of PLA/TiO(2)-Composite Films for Indoor Air Purification
title_full Photocatalytic Oxidation of PLA/TiO(2)-Composite Films for Indoor Air Purification
title_fullStr Photocatalytic Oxidation of PLA/TiO(2)-Composite Films for Indoor Air Purification
title_full_unstemmed Photocatalytic Oxidation of PLA/TiO(2)-Composite Films for Indoor Air Purification
title_short Photocatalytic Oxidation of PLA/TiO(2)-Composite Films for Indoor Air Purification
title_sort photocatalytic oxidation of pla/tio(2)-composite films for indoor air purification
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8153744/
https://www.ncbi.nlm.nih.gov/pubmed/34056216
http://dx.doi.org/10.1021/acsomega.0c06194
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