Optimal Electrospun TiO 2 Nanofiber Photocatalytic Performance via Synergistic Morphology and Particle Crystallinity with Anatase/Rutile Phase Tuning

TiO2 nanofiber photocatalysts offer a highly efficient and stable method of dye degradation through photogenerated radicals. Through electrospinning, the synthesis of the nanofibers with high surface area (i.e., low fiber diameter) and particle crystallinity (e.g., crystallite size and crystal phase...

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Main Authors: Soo, Joshua Zheyan, Lee, Kian Mun, Ang, Bee Chin, Ong, Boon Hoong
Format: Article
Published: Wiley 2019
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Online Access:http://eprints.um.edu.my/23401/
https://doi.org/10.1002/pssa.201900066
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spelling my.um.eprints.234012020-01-13T08:44:26Z http://eprints.um.edu.my/23401/ Optimal Electrospun TiO 2 Nanofiber Photocatalytic Performance via Synergistic Morphology and Particle Crystallinity with Anatase/Rutile Phase Tuning Soo, Joshua Zheyan Lee, Kian Mun Ang, Bee Chin Ong, Boon Hoong QC Physics TP Chemical technology TiO2 nanofiber photocatalysts offer a highly efficient and stable method of dye degradation through photogenerated radicals. Through electrospinning, the synthesis of the nanofibers with high surface area (i.e., low fiber diameter) and particle crystallinity (e.g., crystallite size and crystal phases) is highly desired to yield the best degradation performance. In this study, it is demonstrated that a synergistic combination of low fiber diameter, high crystallite size, and mixed anatase/rutile ratio is obtained to yield an optimal methylene blue degradation rate constant of 0.04100 min−1. The optimization is conducted with the aid of response surface analysis of electrospinning parameters (flow rate, applied voltage, and tip-to-collector distance (TCD)) toward the obtained fiber diameter response. The nanofiber diameter is observed to be from 177.3 to 310.4 nm across the studied range of parameters. The change in nanofiber diameter exhibits linear relationship with the applied voltage while quadratic relationships are observed for both solution flow rate and TCD. Through selective comparison, the lowering of fiber diameter has an adverse effect on the crystallinity and phase transformation (anatase-rutile) of TiO2 particles. This relationship is shown to have a significant effect on the photocatalytic performance of the TiO2 nanofibers. © 2019 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim Wiley 2019 Article PeerReviewed Soo, Joshua Zheyan and Lee, Kian Mun and Ang, Bee Chin and Ong, Boon Hoong (2019) Optimal Electrospun TiO 2 Nanofiber Photocatalytic Performance via Synergistic Morphology and Particle Crystallinity with Anatase/Rutile Phase Tuning. physica status solidi (a), 216 (16). p. 1900066. ISSN 1862-6300 https://doi.org/10.1002/pssa.201900066 doi:10.1002/pssa.201900066
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic QC Physics
TP Chemical technology
spellingShingle QC Physics
TP Chemical technology
Soo, Joshua Zheyan
Lee, Kian Mun
Ang, Bee Chin
Ong, Boon Hoong
Optimal Electrospun TiO 2 Nanofiber Photocatalytic Performance via Synergistic Morphology and Particle Crystallinity with Anatase/Rutile Phase Tuning
description TiO2 nanofiber photocatalysts offer a highly efficient and stable method of dye degradation through photogenerated radicals. Through electrospinning, the synthesis of the nanofibers with high surface area (i.e., low fiber diameter) and particle crystallinity (e.g., crystallite size and crystal phases) is highly desired to yield the best degradation performance. In this study, it is demonstrated that a synergistic combination of low fiber diameter, high crystallite size, and mixed anatase/rutile ratio is obtained to yield an optimal methylene blue degradation rate constant of 0.04100 min−1. The optimization is conducted with the aid of response surface analysis of electrospinning parameters (flow rate, applied voltage, and tip-to-collector distance (TCD)) toward the obtained fiber diameter response. The nanofiber diameter is observed to be from 177.3 to 310.4 nm across the studied range of parameters. The change in nanofiber diameter exhibits linear relationship with the applied voltage while quadratic relationships are observed for both solution flow rate and TCD. Through selective comparison, the lowering of fiber diameter has an adverse effect on the crystallinity and phase transformation (anatase-rutile) of TiO2 particles. This relationship is shown to have a significant effect on the photocatalytic performance of the TiO2 nanofibers. © 2019 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
format Article
author Soo, Joshua Zheyan
Lee, Kian Mun
Ang, Bee Chin
Ong, Boon Hoong
author_facet Soo, Joshua Zheyan
Lee, Kian Mun
Ang, Bee Chin
Ong, Boon Hoong
author_sort Soo, Joshua Zheyan
title Optimal Electrospun TiO 2 Nanofiber Photocatalytic Performance via Synergistic Morphology and Particle Crystallinity with Anatase/Rutile Phase Tuning
title_short Optimal Electrospun TiO 2 Nanofiber Photocatalytic Performance via Synergistic Morphology and Particle Crystallinity with Anatase/Rutile Phase Tuning
title_full Optimal Electrospun TiO 2 Nanofiber Photocatalytic Performance via Synergistic Morphology and Particle Crystallinity with Anatase/Rutile Phase Tuning
title_fullStr Optimal Electrospun TiO 2 Nanofiber Photocatalytic Performance via Synergistic Morphology and Particle Crystallinity with Anatase/Rutile Phase Tuning
title_full_unstemmed Optimal Electrospun TiO 2 Nanofiber Photocatalytic Performance via Synergistic Morphology and Particle Crystallinity with Anatase/Rutile Phase Tuning
title_sort optimal electrospun tio 2 nanofiber photocatalytic performance via synergistic morphology and particle crystallinity with anatase/rutile phase tuning
publisher Wiley
publishDate 2019
url http://eprints.um.edu.my/23401/
https://doi.org/10.1002/pssa.201900066
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score 13.160551