Heterostructure formation of BiVO4 with different Bi compounds : role of the heterojunction on photocatalytic properties

Detalhes bibliográficos
Autor(a) principal: Lopes, Osmando Ferreira
Data de Publicação: 2016
Tipo de documento: Tese
Idioma: eng
Título da fonte: Repositório Institucional da UFSCAR
Texto Completo: https://repositorio.ufscar.br/handle/ufscar/8691
Resumo: Semiconductors employed as photocatalysts that can be activated by visible irradiation have attracted intense scientific interest due to their applications in heterogeneous photocatalysis. BiVO4 is a semiconductor with band gap value of 2.4 eV; however, this material exhibits poor photocatalytic activity mainly due to the rapid recombination of electron/hole pair. An efficient strategy to overcome this challenge is through the formation of type-II heterostructures. Based on this overview, this work aimed at: (i) developing methods to obtain heterostructures composed of BiVO4 and different bismuth compounds (t-BiVO4, Bi2O3 e Bi2O2CO3), (ii) to evaluate the effect of heterojunction formation on photocatalytic properties, and (iii) to study the mechanisms of charge transfer and organic pollutants degradation. Initially, this work investigated the synthesis of BiVO4 by oxidant peroxide method, and it was observed that the main reason for the poor photoactivity of BiVO4 is its inability to reduce O2 to O2 •-. In order to overcome this challenge, we attempted to obtain heterostructures between monoclinic BiVO4 and tetragonal BiVO4 phases (m-BiVO4/t-BiVO4) by oxidant peroxide method. It was verified that m-BiVO4/t-BiVO4 heterostructures exhibited better photocatalytic performance in the degradation of methylene blue (MB) dye than their isolated phases, under visible irradiation. HRTEM images revealed that the heterostructured sample was composed of nanoparticles with average size of 10 nm, the m-BiVO4/t-BiVO4 interface was also evidenced. The mechanisms of charge transfer between the phases and organic pollutant oxidation were proposed in agreement with the obtained results by XPS, mass spectroscopy and TOC analysis. Holes (h+), superoxide anion (O2 -•) and hydroxyl radicals (•OH) were the primary active species responsible for MB photodegradation. The increase of m-BiVO4/t-BiVO4 heterostructure photoactivity occurred due to the formation of a suitable heterojunction, promoting the effective separation of photogenerated charges. However, this method presented difficulties in the control of heterostructure morphology and composition, because it is based on a simultaneous two-phase crystallization process. Therefore, we developed a novel strategy for heterostructure tailoring driven by solubility difference of two semiconductors that possess at least one metal in common. For this, the formation of heterojunctions by BiVO4 growth on Bi2O3 or Bi2O2CO3 self-sacrificial surface was evaluated. For the Bi2O3/BiVO4 heterostructures, the amount of xiv heterojunctions formed between Bi2O3 and BiVO4 was tuned by synthesis process variables (temperature and V concentration) and the particle size of preformed Bi2O3 (i.e. solubility difference). The heterojunctions were evidenced by HRTEM images, where the growth of BiVO4 nanoparticles on Bi2O3 or Bi2O2CO3 surface was observed. Time resolved photoluminescence and XPS results confirmed that the formation of type-II heterostructure led to increase of charge carriers lifetime. The proposed synthesis strategy showed efficiency in obtaining Bi2O3/BiVO4 and Bi2O2CO3/BiVO4 heterostructures with controlled morphology and composition that improved photoactivity when compared to their isolated phases.
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spelling Lopes, Osmando FerreiraOliveira, Cauê Ribeiro dehttp://lattes.cnpq.br/5321313558714462http://lattes.cnpq.br/94932815091285592017-05-02T12:42:14Z2017-05-02T12:42:14Z2016-08-29LOPES, Osmando Ferreira. Heterostructure formation of BiVO4 with different Bi compounds : role of the heterojunction on photocatalytic properties. 2016. Tese (Doutorado em Química) – Universidade Federal de São Carlos, São Carlos, 2016. Disponível em: https://repositorio.ufscar.br/handle/ufscar/8691.https://repositorio.ufscar.br/handle/ufscar/8691Semiconductors employed as photocatalysts that can be activated by visible irradiation have attracted intense scientific interest due to their applications in heterogeneous photocatalysis. BiVO4 is a semiconductor with band gap value of 2.4 eV; however, this material exhibits poor photocatalytic activity mainly due to the rapid recombination of electron/hole pair. An efficient strategy to overcome this challenge is through the formation of type-II heterostructures. Based on this overview, this work aimed at: (i) developing methods to obtain heterostructures composed of BiVO4 and different bismuth compounds (t-BiVO4, Bi2O3 e Bi2O2CO3), (ii) to evaluate the effect of heterojunction formation on photocatalytic properties, and (iii) to study the mechanisms of charge transfer and organic pollutants degradation. Initially, this work investigated the synthesis of BiVO4 by oxidant peroxide method, and it was observed that the main reason for the poor photoactivity of BiVO4 is its inability to reduce O2 to O2 •-. In order to overcome this challenge, we attempted to obtain heterostructures between monoclinic BiVO4 and tetragonal BiVO4 phases (m-BiVO4/t-BiVO4) by oxidant peroxide method. It was verified that m-BiVO4/t-BiVO4 heterostructures exhibited better photocatalytic performance in the degradation of methylene blue (MB) dye than their isolated phases, under visible irradiation. HRTEM images revealed that the heterostructured sample was composed of nanoparticles with average size of 10 nm, the m-BiVO4/t-BiVO4 interface was also evidenced. The mechanisms of charge transfer between the phases and organic pollutant oxidation were proposed in agreement with the obtained results by XPS, mass spectroscopy and TOC analysis. Holes (h+), superoxide anion (O2 -•) and hydroxyl radicals (•OH) were the primary active species responsible for MB photodegradation. The increase of m-BiVO4/t-BiVO4 heterostructure photoactivity occurred due to the formation of a suitable heterojunction, promoting the effective separation of photogenerated charges. However, this method presented difficulties in the control of heterostructure morphology and composition, because it is based on a simultaneous two-phase crystallization process. Therefore, we developed a novel strategy for heterostructure tailoring driven by solubility difference of two semiconductors that possess at least one metal in common. For this, the formation of heterojunctions by BiVO4 growth on Bi2O3 or Bi2O2CO3 self-sacrificial surface was evaluated. For the Bi2O3/BiVO4 heterostructures, the amount of xiv heterojunctions formed between Bi2O3 and BiVO4 was tuned by synthesis process variables (temperature and V concentration) and the particle size of preformed Bi2O3 (i.e. solubility difference). The heterojunctions were evidenced by HRTEM images, where the growth of BiVO4 nanoparticles on Bi2O3 or Bi2O2CO3 surface was observed. Time resolved photoluminescence and XPS results confirmed that the formation of type-II heterostructure led to increase of charge carriers lifetime. The proposed synthesis strategy showed efficiency in obtaining Bi2O3/BiVO4 and Bi2O2CO3/BiVO4 heterostructures with controlled morphology and composition that improved photoactivity when compared to their isolated phases.Semicondutores que podem ser ativados sob radiação visível são de grande interesse para processos fotocatalíticos. O BiVO4 é um semicondutor com valor de band-gap de 2,4 eV, no entanto, este apresenta uma baixa atividade fotocatalítica, devido principalmente à rápida recombinação do par elétron/buraco. Uma estratégia eficiente para superar este desafio é pela formação de heteroestruturas do tipo-II. Diante deste panorama, este trabalho teve por objetivo: (i) desenvolver métodos para obter heteroestruturas de BiVO4 com diferentes compostos de bismuto (t-BiVO4, Bi2O3 e Bi2O2CO3), (ii) avaliar o efeito das heterojunções nas propriedades fotocatalíticas, e (iii) estudar os mecanismos de transferência de carga e de degradação de poluentes orgânicos. Inicialmente, este trabalho lidou com a síntese do BiVO4 pelo método de oxidação por peróxido e observou-se que a principal razão para baixa atividade fotocatalítica do BiVO4 é sua incapacidade de reduzir o O2 em O2 •-. Com o objetivo de superar este desafio, buscou-se a obtenção de heterostruturas de BiVO4 nas fases monoclínica e tetragonal (m- BiVO4/t-BiVO4), pelo método de oxidação por peróxido. Foi verificado que a heteroestrutura m-BiVO4/t-BiVO4 exibiu uma melhor performance fotocatalítica na degradação do corante azul de metileno (AM) do que as suas fases isoladas, sob radiação visível. As imagens de microscopia eletrônica de transmissão de alta resolução (HRTEM) revelaram que a amostra heteroestruturada é composta de nanopartículas com tamanho médio de 10 nm, a interface m-BiVO4/t-BiVO4 também foi evidenciada. Foram propostos mecanismos de transferência de cargas entre as fases e de oxidação do poluente orgânico de acordo com os resultado obtidos pelas técnicas de XPS, espectrometria de massas e análise de TOC. Os buracos (h+), radicais superóxidos (O2 -•) e hidroxila (•OH) foram as principais espécies ativas responsáveis na fotodegradação do AM. O aumento da fotoatividade da heteroestrutura m-BiVO4/t-BiVO4 ocorreu devido a formação de uma heterojunção adequada, que promove a separação efetiva das cargas foto-geradas. No entanto, este método apresentou dificuldade no controle morfológico e da composição da heteroestruturas por ser um processo de cristalização simultânea das fases, portanto, foi desenvolvido uma nova estratégia para a produção de heteroestruturas dirigido pela diferença de solubilidade entre dois semicondutores que possuem ao menos um metal em comum. Para tal, a formação de heterojunções pelo crescimento do BiVO4 na superfície xii de sacrifício do Bi2O3 ou Bi2O2CO3 pré-formados foi avaliada. Para a heteroestrutura Bi2O3/BiVO4 foi observado que a quantidade de junções formadas foi dependente da solubilidade do precursor que foi variado pelo tamanho de partícula do Bi2O3. As heterojunções foram evidenciadas por imagens de HRTEM, onde foi observado a formação de nanopartículas do BiVO4 na superfície das fases de Bi2O3 e Bi2O2CO3. Os espectros de fotoluminescência e de XPS confirmaram que a formação da heteroestrutura do tipo-II conduziu ao aumento do tempo de vida dos portadores de carga. Esta estratégia de síntese proposta mostrou-se eficiente, já que foi possível obter heteroestruturas de Bi2O3/BiVO4 e Bi2O2CO3/BiVO4 com controle de morfologia e composição, que resultou no aumento da fotoatividade quando comparado as fases isoladas.Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)FAPESP: 13/13888-0engUniversidade Federal de São CarlosCâmpus São CarlosPrograma de Pós-Graduação em Química - PPGQUFSCarFotocatálise heterogêneaVanadato de bismutoHeteroestruturaTratamento de águaRadiação visívelMecanismo de fotodegradaçãoHeterogeneous photocatalysisBismuth vanadateHeterostructureWater treatmentVisible radiationPhotodegradation mechanismCIENCIAS EXATAS E DA TERRA::QUIMICAHeterostructure formation of BiVO4 with different Bi compounds : role of the heterojunction on photocatalytic propertiesObtenção de heteroestruturas de BiVO4 com diferentes compostos de bi : papel das heterojunções nas propriedades fotocatalíticasinfo:eu-repo/semantics/publishedVersioninfo:eu-repo/semantics/doctoralThesisOnlineinfo:eu-repo/semantics/openAccessreponame:Repositório Institucional da UFSCARinstname:Universidade Federal de São Carlos (UFSCAR)instacron:UFSCARORIGINALTeseOFL.pdfTeseOFL.pdfapplication/pdf5276658https://{{ getenv "DSPACE_HOST" "repositorio.ufscar.br" }}/bitstream/ufscar/8691/1/TeseOFL.pdffa1530974731a8e33b62043b4c524afbMD51LICENSElicense.txtlicense.txttext/plain; charset=utf-81957https://{{ getenv "DSPACE_HOST" "repositorio.ufscar.br" }}/bitstream/ufscar/8691/2/license.txtae0398b6f8b235e40ad82cba6c50031dMD52TEXTTeseOFL.pdf.txtTeseOFL.pdf.txtExtracted texttext/plain236618https://{{ getenv "DSPACE_HOST" "repositorio.ufscar.br" }}/bitstream/ufscar/8691/3/TeseOFL.pdf.txtca29210ef2d1806aa9da68c65b83fb1cMD53THUMBNAILTeseOFL.pdf.jpgTeseOFL.pdf.jpgIM Thumbnailimage/jpeg8061https://{{ getenv "DSPACE_HOST" "repositorio.ufscar.br" }}/bitstream/ufscar/8691/4/TeseOFL.pdf.jpg52fd4743ef5d1cc2decf31e4f2ed280eMD54ufscar/86912019-09-11 03:38:36.749oai:repositorio.ufscar.br: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Repositório InstitucionalPUBhttps://repositorio.ufscar.br/oai/requestopendoar:43222019-09-11T03:38:36Repositório Institucional da UFSCAR - Universidade Federal de São Carlos (UFSCAR)false
dc.title.eng.fl_str_mv Heterostructure formation of BiVO4 with different Bi compounds : role of the heterojunction on photocatalytic properties
dc.title.alternative.por.fl_str_mv Obtenção de heteroestruturas de BiVO4 com diferentes compostos de bi : papel das heterojunções nas propriedades fotocatalíticas
title Heterostructure formation of BiVO4 with different Bi compounds : role of the heterojunction on photocatalytic properties
spellingShingle Heterostructure formation of BiVO4 with different Bi compounds : role of the heterojunction on photocatalytic properties
Lopes, Osmando Ferreira
Fotocatálise heterogênea
Vanadato de bismuto
Heteroestrutura
Tratamento de água
Radiação visível
Mecanismo de fotodegradação
Heterogeneous photocatalysis
Bismuth vanadate
Heterostructure
Water treatment
Visible radiation
Photodegradation mechanism
CIENCIAS EXATAS E DA TERRA::QUIMICA
title_short Heterostructure formation of BiVO4 with different Bi compounds : role of the heterojunction on photocatalytic properties
title_full Heterostructure formation of BiVO4 with different Bi compounds : role of the heterojunction on photocatalytic properties
title_fullStr Heterostructure formation of BiVO4 with different Bi compounds : role of the heterojunction on photocatalytic properties
title_full_unstemmed Heterostructure formation of BiVO4 with different Bi compounds : role of the heterojunction on photocatalytic properties
title_sort Heterostructure formation of BiVO4 with different Bi compounds : role of the heterojunction on photocatalytic properties
author Lopes, Osmando Ferreira
author_facet Lopes, Osmando Ferreira
author_role author
dc.contributor.authorlattes.por.fl_str_mv http://lattes.cnpq.br/9493281509128559
dc.contributor.author.fl_str_mv Lopes, Osmando Ferreira
dc.contributor.advisor1.fl_str_mv Oliveira, Cauê Ribeiro de
dc.contributor.advisor1Lattes.fl_str_mv http://lattes.cnpq.br/5321313558714462
contributor_str_mv Oliveira, Cauê Ribeiro de
dc.subject.por.fl_str_mv Fotocatálise heterogênea
Vanadato de bismuto
Heteroestrutura
Tratamento de água
Radiação visível
Mecanismo de fotodegradação
topic Fotocatálise heterogênea
Vanadato de bismuto
Heteroestrutura
Tratamento de água
Radiação visível
Mecanismo de fotodegradação
Heterogeneous photocatalysis
Bismuth vanadate
Heterostructure
Water treatment
Visible radiation
Photodegradation mechanism
CIENCIAS EXATAS E DA TERRA::QUIMICA
dc.subject.eng.fl_str_mv Heterogeneous photocatalysis
Bismuth vanadate
Heterostructure
Water treatment
Visible radiation
Photodegradation mechanism
dc.subject.cnpq.fl_str_mv CIENCIAS EXATAS E DA TERRA::QUIMICA
description Semiconductors employed as photocatalysts that can be activated by visible irradiation have attracted intense scientific interest due to their applications in heterogeneous photocatalysis. BiVO4 is a semiconductor with band gap value of 2.4 eV; however, this material exhibits poor photocatalytic activity mainly due to the rapid recombination of electron/hole pair. An efficient strategy to overcome this challenge is through the formation of type-II heterostructures. Based on this overview, this work aimed at: (i) developing methods to obtain heterostructures composed of BiVO4 and different bismuth compounds (t-BiVO4, Bi2O3 e Bi2O2CO3), (ii) to evaluate the effect of heterojunction formation on photocatalytic properties, and (iii) to study the mechanisms of charge transfer and organic pollutants degradation. Initially, this work investigated the synthesis of BiVO4 by oxidant peroxide method, and it was observed that the main reason for the poor photoactivity of BiVO4 is its inability to reduce O2 to O2 •-. In order to overcome this challenge, we attempted to obtain heterostructures between monoclinic BiVO4 and tetragonal BiVO4 phases (m-BiVO4/t-BiVO4) by oxidant peroxide method. It was verified that m-BiVO4/t-BiVO4 heterostructures exhibited better photocatalytic performance in the degradation of methylene blue (MB) dye than their isolated phases, under visible irradiation. HRTEM images revealed that the heterostructured sample was composed of nanoparticles with average size of 10 nm, the m-BiVO4/t-BiVO4 interface was also evidenced. The mechanisms of charge transfer between the phases and organic pollutant oxidation were proposed in agreement with the obtained results by XPS, mass spectroscopy and TOC analysis. Holes (h+), superoxide anion (O2 -•) and hydroxyl radicals (•OH) were the primary active species responsible for MB photodegradation. The increase of m-BiVO4/t-BiVO4 heterostructure photoactivity occurred due to the formation of a suitable heterojunction, promoting the effective separation of photogenerated charges. However, this method presented difficulties in the control of heterostructure morphology and composition, because it is based on a simultaneous two-phase crystallization process. Therefore, we developed a novel strategy for heterostructure tailoring driven by solubility difference of two semiconductors that possess at least one metal in common. For this, the formation of heterojunctions by BiVO4 growth on Bi2O3 or Bi2O2CO3 self-sacrificial surface was evaluated. For the Bi2O3/BiVO4 heterostructures, the amount of xiv heterojunctions formed between Bi2O3 and BiVO4 was tuned by synthesis process variables (temperature and V concentration) and the particle size of preformed Bi2O3 (i.e. solubility difference). The heterojunctions were evidenced by HRTEM images, where the growth of BiVO4 nanoparticles on Bi2O3 or Bi2O2CO3 surface was observed. Time resolved photoluminescence and XPS results confirmed that the formation of type-II heterostructure led to increase of charge carriers lifetime. The proposed synthesis strategy showed efficiency in obtaining Bi2O3/BiVO4 and Bi2O2CO3/BiVO4 heterostructures with controlled morphology and composition that improved photoactivity when compared to their isolated phases.
publishDate 2016
dc.date.issued.fl_str_mv 2016-08-29
dc.date.accessioned.fl_str_mv 2017-05-02T12:42:14Z
dc.date.available.fl_str_mv 2017-05-02T12:42:14Z
dc.type.status.fl_str_mv info:eu-repo/semantics/publishedVersion
dc.type.driver.fl_str_mv info:eu-repo/semantics/doctoralThesis
format doctoralThesis
status_str publishedVersion
dc.identifier.citation.fl_str_mv LOPES, Osmando Ferreira. Heterostructure formation of BiVO4 with different Bi compounds : role of the heterojunction on photocatalytic properties. 2016. Tese (Doutorado em Química) – Universidade Federal de São Carlos, São Carlos, 2016. Disponível em: https://repositorio.ufscar.br/handle/ufscar/8691.
dc.identifier.uri.fl_str_mv https://repositorio.ufscar.br/handle/ufscar/8691
identifier_str_mv LOPES, Osmando Ferreira. Heterostructure formation of BiVO4 with different Bi compounds : role of the heterojunction on photocatalytic properties. 2016. Tese (Doutorado em Química) – Universidade Federal de São Carlos, São Carlos, 2016. Disponível em: https://repositorio.ufscar.br/handle/ufscar/8691.
url https://repositorio.ufscar.br/handle/ufscar/8691
dc.language.iso.fl_str_mv eng
language eng
dc.rights.driver.fl_str_mv info:eu-repo/semantics/openAccess
eu_rights_str_mv openAccess
dc.publisher.none.fl_str_mv Universidade Federal de São Carlos
Câmpus São Carlos
dc.publisher.program.fl_str_mv Programa de Pós-Graduação em Química - PPGQ
dc.publisher.initials.fl_str_mv UFSCar
publisher.none.fl_str_mv Universidade Federal de São Carlos
Câmpus São Carlos
dc.source.none.fl_str_mv reponame:Repositório Institucional da UFSCAR
instname:Universidade Federal de São Carlos (UFSCAR)
instacron:UFSCAR
instname_str Universidade Federal de São Carlos (UFSCAR)
instacron_str UFSCAR
institution UFSCAR
reponame_str Repositório Institucional da UFSCAR
collection Repositório Institucional da UFSCAR
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repository.name.fl_str_mv Repositório Institucional da UFSCAR - Universidade Federal de São Carlos (UFSCAR)
repository.mail.fl_str_mv
_version_ 1777472081685905408