Significantly enhanced piezo-photocatalytic capability in BaTiO3 nanowires for degrading organic dye

Over the last several years, piezo-photocatalytic effect was intensively investigated for a facile, effective and promising protocol to sewage treatment and environmental remediation. The research on the integration of piezocatalytic and photocatalytic process on lead-free ferroelectric materials is...

Full description

Bibliographic Details
Main Authors: Xiaofang Liu, Longyin Xiao, Yong Zhang, Huajun Sun
Format: Article
Language:English
Published: Elsevier 2020-06-01
Series:Journal of Materiomics
Online Access:http://www.sciencedirect.com/science/article/pii/S2352847820300125
id doaj-5bb694b9db2e462198fe5934a1ea60ec
record_format Article
spelling doaj-5bb694b9db2e462198fe5934a1ea60ec2020-11-25T03:31:15ZengElsevierJournal of Materiomics2352-84782020-06-0162256262Significantly enhanced piezo-photocatalytic capability in BaTiO3 nanowires for degrading organic dyeXiaofang Liu0Longyin Xiao1Yong Zhang2Huajun Sun3School of Chemistry, Chemical Engineering and Life Sciences, Wuhan University of Technology, Wuhan, 430070, ChinaSchool of Chemistry, Chemical Engineering and Life Sciences, Wuhan University of Technology, Wuhan, 430070, ChinaState Key Laboratory of Silicate Materials for Architectures, Center for Smart Materials and Device Integration, School of Materials Science and Engineering, Wuhan University of Technology, Wuhan, 430070, China; Corresponding author.State Key Laboratory of Silicate Materials for Architectures, Center for Smart Materials and Device Integration, School of Materials Science and Engineering, Wuhan University of Technology, Wuhan, 430070, China; Advanced Ceramics Institute of Zibo New & High-Tech Industrial Development Zone, Zibo, 255000, China; Corresponding author. State Key Laboratory of Silicate Materials for Architectures, Center for Smart Materials and Device Integration, School of Materials Science and Engineering, Wuhan University of Technology, Wuhan, 430070, China.Over the last several years, piezo-photocatalytic effect was intensively investigated for a facile, effective and promising protocol to sewage treatment and environmental remediation. The research on the integration of piezocatalytic and photocatalytic process on lead-free ferroelectric materials is highly demanded to further push this field forward. In this work, BaTiO3 nanowires (BT NWs) were fabricated by a two-step hydrothermal method. The degradation of organic dye (methyl orange, MO) aqueous solution (5 mg L−1) by integrating photocatalysis with the piezoelectric-like effect under UV light radiation and ultrasonic vibration was investigated. The decomposition ratio reaches up to ∼98.17% (at 80 min), which is around 1.28 and 2.24 times of the sole piezocatalysis and photocatalysis process, respectively. The intermediate product of hydroxyl radical (•OH) and superoxide radical (•O2−) was detected and quantified by radical trapping experiments, to illustrating their key role in degrading MO molecules. In addition, we carried out sequential cycles to evaluate the cycling stability and usage durability of catalysts and a reduction of ∼15% in the efficiency was observed after four cycles. This work provides a promising paradigm for the further development of piezo-photocatalytic materials and target applications in environmental field. Keywords: Hydrothermal, BaTiO3, Piezo-photocatalytic, Piezoelectric potential, Catalysishttp://www.sciencedirect.com/science/article/pii/S2352847820300125
collection DOAJ
language English
format Article
sources DOAJ
author Xiaofang Liu
Longyin Xiao
Yong Zhang
Huajun Sun
spellingShingle Xiaofang Liu
Longyin Xiao
Yong Zhang
Huajun Sun
Significantly enhanced piezo-photocatalytic capability in BaTiO3 nanowires for degrading organic dye
Journal of Materiomics
author_facet Xiaofang Liu
Longyin Xiao
Yong Zhang
Huajun Sun
author_sort Xiaofang Liu
title Significantly enhanced piezo-photocatalytic capability in BaTiO3 nanowires for degrading organic dye
title_short Significantly enhanced piezo-photocatalytic capability in BaTiO3 nanowires for degrading organic dye
title_full Significantly enhanced piezo-photocatalytic capability in BaTiO3 nanowires for degrading organic dye
title_fullStr Significantly enhanced piezo-photocatalytic capability in BaTiO3 nanowires for degrading organic dye
title_full_unstemmed Significantly enhanced piezo-photocatalytic capability in BaTiO3 nanowires for degrading organic dye
title_sort significantly enhanced piezo-photocatalytic capability in batio3 nanowires for degrading organic dye
publisher Elsevier
series Journal of Materiomics
issn 2352-8478
publishDate 2020-06-01
description Over the last several years, piezo-photocatalytic effect was intensively investigated for a facile, effective and promising protocol to sewage treatment and environmental remediation. The research on the integration of piezocatalytic and photocatalytic process on lead-free ferroelectric materials is highly demanded to further push this field forward. In this work, BaTiO3 nanowires (BT NWs) were fabricated by a two-step hydrothermal method. The degradation of organic dye (methyl orange, MO) aqueous solution (5 mg L−1) by integrating photocatalysis with the piezoelectric-like effect under UV light radiation and ultrasonic vibration was investigated. The decomposition ratio reaches up to ∼98.17% (at 80 min), which is around 1.28 and 2.24 times of the sole piezocatalysis and photocatalysis process, respectively. The intermediate product of hydroxyl radical (•OH) and superoxide radical (•O2−) was detected and quantified by radical trapping experiments, to illustrating their key role in degrading MO molecules. In addition, we carried out sequential cycles to evaluate the cycling stability and usage durability of catalysts and a reduction of ∼15% in the efficiency was observed after four cycles. This work provides a promising paradigm for the further development of piezo-photocatalytic materials and target applications in environmental field. Keywords: Hydrothermal, BaTiO3, Piezo-photocatalytic, Piezoelectric potential, Catalysis
url http://www.sciencedirect.com/science/article/pii/S2352847820300125
work_keys_str_mv AT xiaofangliu significantlyenhancedpiezophotocatalyticcapabilityinbatio3nanowiresfordegradingorganicdye
AT longyinxiao significantlyenhancedpiezophotocatalyticcapabilityinbatio3nanowiresfordegradingorganicdye
AT yongzhang significantlyenhancedpiezophotocatalyticcapabilityinbatio3nanowiresfordegradingorganicdye
AT huajunsun significantlyenhancedpiezophotocatalyticcapabilityinbatio3nanowiresfordegradingorganicdye
_version_ 1724572679507279872