Fabrication and characterization of BiOBr-SnWO4 heterojunction nanocomposites with boosted photodegradation capability

Novel BiOBr-SnWO4 heterojunction nanocomposites were fabricated by chemical precipitation method using as-prepared SnWO4 nanoparticles, bismuth nitrate as a source of bismuth, KBr as a source of Br, and ethylene glycol as solvent. The prepared BiOBr-SnWO4 heterojunction nanocomposites were examined...

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Main Authors: Arpita Paul Chowdhury, Baban H. Shambharkar
Format: Article
Language:English
Published: Elsevier 2020-12-01
Series:Chemical Engineering Journal Advances
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2666821120300405
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spelling doaj-ba22cede8a8741ceb47ea4e9e3ac13da2021-04-22T13:41:52ZengElsevierChemical Engineering Journal Advances2666-82112020-12-014100040Fabrication and characterization of BiOBr-SnWO4 heterojunction nanocomposites with boosted photodegradation capabilityArpita Paul Chowdhury0Baban H. Shambharkar1Chemistry Department, National Institute of Technology Silchar, 788 010 Assam, IndiaCorresponding author.; Chemistry Department, National Institute of Technology Silchar, 788 010 Assam, IndiaNovel BiOBr-SnWO4 heterojunction nanocomposites were fabricated by chemical precipitation method using as-prepared SnWO4 nanoparticles, bismuth nitrate as a source of bismuth, KBr as a source of Br, and ethylene glycol as solvent. The prepared BiOBr-SnWO4 heterojunction nanocomposites were examined for phase structure, chemical composition, surface morphology, optical properties, and charge transport by XRD, XPS, TEM, UV-Visible NIR, photoluminescence (PL), time-resolved fluorescence spectroscopy, electrochemical impedance spectroscopy (EIS), and Brunauer-Emmett-Teller (BET) analysis. X-ray diffractogram of BiOBr-SnWO4 nanocomposites revealed the diffraction peaks corresponding to orthorhombic SnWO4 nanoparticles in the tetragonal BiOBr which indicated that they exist in the mixed-phase in the composite. TEM pictures confirmed the existence of SnWO4 nanostructure in the BiOBr particles yielding core-shell particles. PL, fluorescence lifetime, and EIS investigations of the prepared samples showed a good charge separation efficiency in the BiOBr-SnWO4–1 nanocomposite. The application of BiOBr-SnWO4 nanocomposites as a photocatalyst was investigated via the decomposition of an aqueous solution of rhodamine B (RhB) and brilliant green (BG) dyes in the natural sunlight. Among the prepared materials, the BiOBr-SnWO4–1 nanocomposite presented robust photodegradation capability towards the degradation of RhB and BG dyes. The degradation efficiency touched to 97.85% and 95.5% for RhB and BG, respectively. The superior performance of BiOBr-SnWO4–1 is attributed to the existence of heterojunction between p-type BiOBr and n-type SnWO4 nanoparticles along with an improved visible light absorption capacity of heterojunction and the efficient interfacial charge transfer/ separation. The radical scavenger investigations showed that photogenerated h+, O2∙−, and ∙OH radicals generated by the photocatalyst were responsible for RhB and BG degradation.http://www.sciencedirect.com/science/article/pii/S2666821120300405BiOBr-SnWO4HeterojunctionNanocompositePhotodegradationRhodamine BBrilliant green
collection DOAJ
language English
format Article
sources DOAJ
author Arpita Paul Chowdhury
Baban H. Shambharkar
spellingShingle Arpita Paul Chowdhury
Baban H. Shambharkar
Fabrication and characterization of BiOBr-SnWO4 heterojunction nanocomposites with boosted photodegradation capability
Chemical Engineering Journal Advances
BiOBr-SnWO4
Heterojunction
Nanocomposite
Photodegradation
Rhodamine B
Brilliant green
author_facet Arpita Paul Chowdhury
Baban H. Shambharkar
author_sort Arpita Paul Chowdhury
title Fabrication and characterization of BiOBr-SnWO4 heterojunction nanocomposites with boosted photodegradation capability
title_short Fabrication and characterization of BiOBr-SnWO4 heterojunction nanocomposites with boosted photodegradation capability
title_full Fabrication and characterization of BiOBr-SnWO4 heterojunction nanocomposites with boosted photodegradation capability
title_fullStr Fabrication and characterization of BiOBr-SnWO4 heterojunction nanocomposites with boosted photodegradation capability
title_full_unstemmed Fabrication and characterization of BiOBr-SnWO4 heterojunction nanocomposites with boosted photodegradation capability
title_sort fabrication and characterization of biobr-snwo4 heterojunction nanocomposites with boosted photodegradation capability
publisher Elsevier
series Chemical Engineering Journal Advances
issn 2666-8211
publishDate 2020-12-01
description Novel BiOBr-SnWO4 heterojunction nanocomposites were fabricated by chemical precipitation method using as-prepared SnWO4 nanoparticles, bismuth nitrate as a source of bismuth, KBr as a source of Br, and ethylene glycol as solvent. The prepared BiOBr-SnWO4 heterojunction nanocomposites were examined for phase structure, chemical composition, surface morphology, optical properties, and charge transport by XRD, XPS, TEM, UV-Visible NIR, photoluminescence (PL), time-resolved fluorescence spectroscopy, electrochemical impedance spectroscopy (EIS), and Brunauer-Emmett-Teller (BET) analysis. X-ray diffractogram of BiOBr-SnWO4 nanocomposites revealed the diffraction peaks corresponding to orthorhombic SnWO4 nanoparticles in the tetragonal BiOBr which indicated that they exist in the mixed-phase in the composite. TEM pictures confirmed the existence of SnWO4 nanostructure in the BiOBr particles yielding core-shell particles. PL, fluorescence lifetime, and EIS investigations of the prepared samples showed a good charge separation efficiency in the BiOBr-SnWO4–1 nanocomposite. The application of BiOBr-SnWO4 nanocomposites as a photocatalyst was investigated via the decomposition of an aqueous solution of rhodamine B (RhB) and brilliant green (BG) dyes in the natural sunlight. Among the prepared materials, the BiOBr-SnWO4–1 nanocomposite presented robust photodegradation capability towards the degradation of RhB and BG dyes. The degradation efficiency touched to 97.85% and 95.5% for RhB and BG, respectively. The superior performance of BiOBr-SnWO4–1 is attributed to the existence of heterojunction between p-type BiOBr and n-type SnWO4 nanoparticles along with an improved visible light absorption capacity of heterojunction and the efficient interfacial charge transfer/ separation. The radical scavenger investigations showed that photogenerated h+, O2∙−, and ∙OH radicals generated by the photocatalyst were responsible for RhB and BG degradation.
topic BiOBr-SnWO4
Heterojunction
Nanocomposite
Photodegradation
Rhodamine B
Brilliant green
url http://www.sciencedirect.com/science/article/pii/S2666821120300405
work_keys_str_mv AT arpitapaulchowdhury fabricationandcharacterizationofbiobrsnwo4heterojunctionnanocompositeswithboostedphotodegradationcapability
AT babanhshambharkar fabricationandcharacterizationofbiobrsnwo4heterojunctionnanocompositeswithboostedphotodegradationcapability
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