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Investigation of synergetic effect of adsorption and photocatalysis for the removal of tetracycline by BiFeO3 immobilized on copolymer seeds

Yıl 2022, Cilt: 5 Sayı: 2, 128 - 136, 30.06.2022
https://doi.org/10.35208/ert.1018193

Öz

The utilization of powdered photocatalysts can cause problems such as agglomeration and difficulty in separation in conventional applications. In this work, deposition of photocatalyst particles on a co-polymeric network was suggested to solve this issue. For this purpose, ferrite type perovskite BiFeO3 particles were immobilized on the sulphonated polystyrene-divinyl benzene seeds via a facile impregnation process and the heterostructured catalyst (BFO@co-STR/DVB) exhibited boosted removal performance towards tetracycline antibiotic. The co-polymer itself showed attractive adsorption (93% removal) towards tetracycline due to the robust π–π stacking or hydrophobic relationship. The photocatalytic performance of optimal BFO@co-STR/DVB catalyst had the greatest value of apparent rate constant (0.037 min-1), which was 6.16 times higher than that for bare BiFeO3 (0.006 min-1). Moreover, the heterostructured photocatalyst displayed the highest catalytic efficiency as 98.5% which was mainly assigned to the synergetic effect of adsorption and photocatalysis. Therefore, detailed adsorption mechanism was examined by applying three kinetic models and the pseudo-second order model (qe=88.9 mg/g; R2=0.993) was fitted well describing well the adsorption. The impact of perovskite amount on the polymer structure was also investigated. Apart from tetracycline molecule, the photocatalytic activity of the heterostructured catalyst with respect to different pharmaceutical (isoniazid) was also investigated and the adsorptive removal of isoniazid over the co-STR/DVB polymer was calculated as 80.0% while it significantly increased to 98.2% in the BFO@co-STR/DVB photocatalytic system. This study demonstrated the effective utilization of the perovskite deposited co-polymeric network in the field of “photocatalysis”.

Destekleyen Kurum

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Proje Numarası

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Teşekkür

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Kaynakça

  • [1] V. Dutta, S. Sharma, P. Raizada, A. Hosseini-Bandegharaei, J. Kaushal, P. Singh, " Fabrication of visible light active BiFeO3/CuS/SiO2 Z-scheme photocatalyst for efficient dye degradation," Materials Letters, Vol 270, pp. 2–5, 2020.
  • [2] J. Ćirković, A. Radojković, D. Luković Golić, N. Tasić, M. Čizmić, G. Branković, Z. Branković, "Visible-light photocatalytic degradation of Mordant Blue 9 by single-phase BiFeO3 nanoparticles," Journal of Environmental Chemical Engineering, Vol 9 (1), pp. 104587, 2020.
  • [3] C. Ponraj, G. Vinitha, J. Daniel, "A review on the visible light active BiFeO3 nanostructures as suitable photocatalyst in the degradation of different textile dyes," Environmental Nanotechnology, Monitoring & Management, Vol 7, pp. 110–120, 2017.
  • [4] H. Iboukhoulef, R. Douani, A. Amrane, A. Chaouchi, A. Elias, " Heterogeneous Fenton like degradation of olive Mill wastewater using ozone in the presence of BiFeO3 photocatalyst," Journal of Photochemistry & Photobiology A: Chemistry, Vol 383, pp. 112012, 2019.
  • [5] S. Wu, Y. Lin, C. Yang, C. Du, Q. Teng, Y. Ma, D. Zhang, L. Nie, Y. Zhong, " Enhanced activation of peroxymonosulfte by LaFeO3 perovskite supported on Al2O3 for degradation of organic pollutants" Chemosphere, Vol 237, pp. 124478, 2019.
  • [6] H. Li, J. Zhu, P. Xiao, Y. Zhan, K. Lv, L. Wu, M. Li, " On the mechanism of oxidative degradation of rhodamine B over LaFeO3 catalysts supported on silica materials: Role of support", Microporous and Mesoporous Materials, Vol 221, pp. 159–166, 2016.
  • [7] A. Alpay, Ö. Tuna, E.B. Simsek, "Deposition of perovskite-type LaFeO3 particles on spherical commercial polystyrene resin: A new platform for enhanced photo-Fenton-catalyzed degradation and simultaneous wastewater purification" Environmental Technology & Innovation, Vol 20, pp. 101175, 2020.
  • [8] O. Suarez, J.J. Olaya, S.E. Rodil, "Structural and electrochemical characterization of sulfonated styrene-divinyl benzene/Bismuth-Tin electrodes," Colloids and Surfaces A Physicochemical and Engineering Aspects, Vol 627, pp. 126975, 2021.
  • [9] A. Gouthaman, R.S. Azarudeen, A. Gnanaprakasam, V.M. Sivakumar, M. Thirumarimurugan, "Polymeric nanocomposites for the removal of Acid red 52 dye from aqueous solutions: Synthesis, characterization, kinetic and isotherm studies," Ecotoxicology and Environmental Safety, Vol 160, pp. 42–51, 2018.
  • [10] L. Mohammadi, A. Rahdar, R. Khaksefidi, A. Ghamkhari, " Polystyrene Magnetic Nanocomposites as Antibiotic Adsorbents," Polymers, Vol 12, pp. 1313, 2020.
  • [11] M. Akbulut Söylemez, B.Ö. Kemaloğulları, " Surface modification of magnetic nanoparticles via admicellar polymerization for selective removal of tetracycline from real water samples," New Journal of Chemistry, Vol 45, pp. 6415–6423, 2021.
  • [12] M. Qiao, M.M. Wang, M.L. Chen, J.H. Wang, "A novel porous polymeric microsphere for the selective adsorption and isolation of conalbumin," Analytica Chimica Acta, Vol 1148, pp. 238176, 2021.
  • [13] P. Ergenekon, E. Gürbulak, B. Keskinler, " A novel method for sulfonation of microporous polystyrene divinyl benzene copolymer using gaseous SO2 in the waste air streams," Chemical Engineering and Processing: Process Intensification, Vol 50, pp. 16–21, 2011.
  • [14] Y. Zhang, K. Chen, B. Gong, Y. Yin, S. Zhou, K. Xiao, " Scalable synthesis of monodisperse and recyclable sulphonated polystyrene microspheres for sustainable elimination of heavy metals in wastewater," Environmental Technology, pp. 1–13, 2021.
  • [15] E. Córdova-Mateo, O. Bertran, C.A. Ferreira, C. Alemán, "Transport of hydronium ions inside poly(styrene-co-divinyl benzene) cation exchange membranes," Journal of Membrane Science, Vol 428, pp. 393–402, 2013.
  • [16] T.A. Rauf, T.S. Anirudhan, " Synthesis and characterization of sulphonic acid ligand immobilized Aminopropyl silanetriol copolymer and evaluation of its Bovine serum albumin adsorption efficiency," Mater.ials Today: Proceeding, Vol 41, pp. 728–735, 2020.
  • [17] L. Wang, J.B. Xu, B. Gao, A.M. Chang, J. Chen, L. Bian, C.Y. Song," Synthesis of BiFeO3 nanoparticles by a low-heating temperature solid-state precursor method," Material Research Bulletin, Vol 48, pp. 383–388, 2013.
  • [18] N.S. Abdul Satar, R. Adnan, H.L. Lee, S.R. Hall, T. Kobayashi, M.H. Mohamad Kassim, N.H. Mohd Kaus, "Facile green synthesis of ytrium-doped BiFeO3 with highly efficient photocatalytic degradation towards methylene blue," Ceramic International, Vol 45, pp. 15964–15973, 2019.
  • [19] M. Mahmoud Nasef, H. Saidi, K.Z. Mohd Dahlan, "Kinetic investigations of graft copolymerization of sodium styrene sulfonate onto electron beam irradiated poly(vinylidene fluoride) films," Radiation Physics Chemistry, 80, pp. 66–75, 2011.
  • [20] L. Melo, R. Benavides, G. Martínez, L. Da Silva, M.M.S. Paula, " Degradation reactions during sulphonation of poly(styrene-co-acrylic acid) used as membranes," Polymer Degradation and Stability, Vol 109, pp. 343–352, 2014.
  • [21] Z. Balta, E.B. Simsek, "Uncovering the systematical charge separation effect of boron nitride quantum dots on photocatalytic performance of BiFeO3 perovskite towards degradation of tetracycline antibiotic," Journal of Environmental Chemical Engineering, Vol 9, pp. 106567, 2021.
  • [22] M. Sharma, J. Singh, S. Hazra, S. Basu, "Adsorption of heavy metal ions by mesoporous ZnO and TiO2@ZnO monoliths: Adsorption and kinetic studies," Microchemical Journal, Vol 145, pp. 105–112, 2019.
  • [23] E. Carazo, A. Borrego-Sánchez, F. García-Villén, R. Sánchez-Espejo, C. Viseras, P. Cerezo, C. Aguzzi, "Adsorption and characterization of palygorskite-isoniazid nanohybrids," Applied Clay Science, Vol 160, pp. 180–185, 2018.
  • [24] R.R.S. Coronado-Castañeda, M.L. Maya-Treviño, E. Garza-González, J. Peral, M. Villanueva-Rodríguez, A. Hernández-Ramírez, "Photocatalytic degradation and toxicity reduction of isoniazid using β-Bi2O3 in real wastewater," Catalysis Today, Vol 341, pp. 82–89, 2020.
  • [25] S. Akyuz, T. Akyuz, E. Akalin, "Adsorption of isoniazid onto sepiolite–palygorskite group of clays: An IR study," Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, Vol 75, pp. 1304–1307, 2010.
Yıl 2022, Cilt: 5 Sayı: 2, 128 - 136, 30.06.2022
https://doi.org/10.35208/ert.1018193

Öz

Proje Numarası

-

Kaynakça

  • [1] V. Dutta, S. Sharma, P. Raizada, A. Hosseini-Bandegharaei, J. Kaushal, P. Singh, " Fabrication of visible light active BiFeO3/CuS/SiO2 Z-scheme photocatalyst for efficient dye degradation," Materials Letters, Vol 270, pp. 2–5, 2020.
  • [2] J. Ćirković, A. Radojković, D. Luković Golić, N. Tasić, M. Čizmić, G. Branković, Z. Branković, "Visible-light photocatalytic degradation of Mordant Blue 9 by single-phase BiFeO3 nanoparticles," Journal of Environmental Chemical Engineering, Vol 9 (1), pp. 104587, 2020.
  • [3] C. Ponraj, G. Vinitha, J. Daniel, "A review on the visible light active BiFeO3 nanostructures as suitable photocatalyst in the degradation of different textile dyes," Environmental Nanotechnology, Monitoring & Management, Vol 7, pp. 110–120, 2017.
  • [4] H. Iboukhoulef, R. Douani, A. Amrane, A. Chaouchi, A. Elias, " Heterogeneous Fenton like degradation of olive Mill wastewater using ozone in the presence of BiFeO3 photocatalyst," Journal of Photochemistry & Photobiology A: Chemistry, Vol 383, pp. 112012, 2019.
  • [5] S. Wu, Y. Lin, C. Yang, C. Du, Q. Teng, Y. Ma, D. Zhang, L. Nie, Y. Zhong, " Enhanced activation of peroxymonosulfte by LaFeO3 perovskite supported on Al2O3 for degradation of organic pollutants" Chemosphere, Vol 237, pp. 124478, 2019.
  • [6] H. Li, J. Zhu, P. Xiao, Y. Zhan, K. Lv, L. Wu, M. Li, " On the mechanism of oxidative degradation of rhodamine B over LaFeO3 catalysts supported on silica materials: Role of support", Microporous and Mesoporous Materials, Vol 221, pp. 159–166, 2016.
  • [7] A. Alpay, Ö. Tuna, E.B. Simsek, "Deposition of perovskite-type LaFeO3 particles on spherical commercial polystyrene resin: A new platform for enhanced photo-Fenton-catalyzed degradation and simultaneous wastewater purification" Environmental Technology & Innovation, Vol 20, pp. 101175, 2020.
  • [8] O. Suarez, J.J. Olaya, S.E. Rodil, "Structural and electrochemical characterization of sulfonated styrene-divinyl benzene/Bismuth-Tin electrodes," Colloids and Surfaces A Physicochemical and Engineering Aspects, Vol 627, pp. 126975, 2021.
  • [9] A. Gouthaman, R.S. Azarudeen, A. Gnanaprakasam, V.M. Sivakumar, M. Thirumarimurugan, "Polymeric nanocomposites for the removal of Acid red 52 dye from aqueous solutions: Synthesis, characterization, kinetic and isotherm studies," Ecotoxicology and Environmental Safety, Vol 160, pp. 42–51, 2018.
  • [10] L. Mohammadi, A. Rahdar, R. Khaksefidi, A. Ghamkhari, " Polystyrene Magnetic Nanocomposites as Antibiotic Adsorbents," Polymers, Vol 12, pp. 1313, 2020.
  • [11] M. Akbulut Söylemez, B.Ö. Kemaloğulları, " Surface modification of magnetic nanoparticles via admicellar polymerization for selective removal of tetracycline from real water samples," New Journal of Chemistry, Vol 45, pp. 6415–6423, 2021.
  • [12] M. Qiao, M.M. Wang, M.L. Chen, J.H. Wang, "A novel porous polymeric microsphere for the selective adsorption and isolation of conalbumin," Analytica Chimica Acta, Vol 1148, pp. 238176, 2021.
  • [13] P. Ergenekon, E. Gürbulak, B. Keskinler, " A novel method for sulfonation of microporous polystyrene divinyl benzene copolymer using gaseous SO2 in the waste air streams," Chemical Engineering and Processing: Process Intensification, Vol 50, pp. 16–21, 2011.
  • [14] Y. Zhang, K. Chen, B. Gong, Y. Yin, S. Zhou, K. Xiao, " Scalable synthesis of monodisperse and recyclable sulphonated polystyrene microspheres for sustainable elimination of heavy metals in wastewater," Environmental Technology, pp. 1–13, 2021.
  • [15] E. Córdova-Mateo, O. Bertran, C.A. Ferreira, C. Alemán, "Transport of hydronium ions inside poly(styrene-co-divinyl benzene) cation exchange membranes," Journal of Membrane Science, Vol 428, pp. 393–402, 2013.
  • [16] T.A. Rauf, T.S. Anirudhan, " Synthesis and characterization of sulphonic acid ligand immobilized Aminopropyl silanetriol copolymer and evaluation of its Bovine serum albumin adsorption efficiency," Mater.ials Today: Proceeding, Vol 41, pp. 728–735, 2020.
  • [17] L. Wang, J.B. Xu, B. Gao, A.M. Chang, J. Chen, L. Bian, C.Y. Song," Synthesis of BiFeO3 nanoparticles by a low-heating temperature solid-state precursor method," Material Research Bulletin, Vol 48, pp. 383–388, 2013.
  • [18] N.S. Abdul Satar, R. Adnan, H.L. Lee, S.R. Hall, T. Kobayashi, M.H. Mohamad Kassim, N.H. Mohd Kaus, "Facile green synthesis of ytrium-doped BiFeO3 with highly efficient photocatalytic degradation towards methylene blue," Ceramic International, Vol 45, pp. 15964–15973, 2019.
  • [19] M. Mahmoud Nasef, H. Saidi, K.Z. Mohd Dahlan, "Kinetic investigations of graft copolymerization of sodium styrene sulfonate onto electron beam irradiated poly(vinylidene fluoride) films," Radiation Physics Chemistry, 80, pp. 66–75, 2011.
  • [20] L. Melo, R. Benavides, G. Martínez, L. Da Silva, M.M.S. Paula, " Degradation reactions during sulphonation of poly(styrene-co-acrylic acid) used as membranes," Polymer Degradation and Stability, Vol 109, pp. 343–352, 2014.
  • [21] Z. Balta, E.B. Simsek, "Uncovering the systematical charge separation effect of boron nitride quantum dots on photocatalytic performance of BiFeO3 perovskite towards degradation of tetracycline antibiotic," Journal of Environmental Chemical Engineering, Vol 9, pp. 106567, 2021.
  • [22] M. Sharma, J. Singh, S. Hazra, S. Basu, "Adsorption of heavy metal ions by mesoporous ZnO and TiO2@ZnO monoliths: Adsorption and kinetic studies," Microchemical Journal, Vol 145, pp. 105–112, 2019.
  • [23] E. Carazo, A. Borrego-Sánchez, F. García-Villén, R. Sánchez-Espejo, C. Viseras, P. Cerezo, C. Aguzzi, "Adsorption and characterization of palygorskite-isoniazid nanohybrids," Applied Clay Science, Vol 160, pp. 180–185, 2018.
  • [24] R.R.S. Coronado-Castañeda, M.L. Maya-Treviño, E. Garza-González, J. Peral, M. Villanueva-Rodríguez, A. Hernández-Ramírez, "Photocatalytic degradation and toxicity reduction of isoniazid using β-Bi2O3 in real wastewater," Catalysis Today, Vol 341, pp. 82–89, 2020.
  • [25] S. Akyuz, T. Akyuz, E. Akalin, "Adsorption of isoniazid onto sepiolite–palygorskite group of clays: An IR study," Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, Vol 75, pp. 1304–1307, 2010.
Toplam 25 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Çevre Mühendisliği
Bölüm Research Articles
Yazarlar

Esra Bilgin Şimşek 0000-0002-2207-3855

Zeynep Balta 0000-0002-4427-4498

Proje Numarası -
Yayımlanma Tarihi 30 Haziran 2022
Gönderilme Tarihi 2 Kasım 2021
Kabul Tarihi 9 Mart 2022
Yayımlandığı Sayı Yıl 2022 Cilt: 5 Sayı: 2

Kaynak Göster

APA Bilgin Şimşek, E., & Balta, Z. (2022). Investigation of synergetic effect of adsorption and photocatalysis for the removal of tetracycline by BiFeO3 immobilized on copolymer seeds. Environmental Research and Technology, 5(2), 128-136. https://doi.org/10.35208/ert.1018193
AMA Bilgin Şimşek E, Balta Z. Investigation of synergetic effect of adsorption and photocatalysis for the removal of tetracycline by BiFeO3 immobilized on copolymer seeds. ERT. Haziran 2022;5(2):128-136. doi:10.35208/ert.1018193
Chicago Bilgin Şimşek, Esra, ve Zeynep Balta. “Investigation of Synergetic Effect of Adsorption and Photocatalysis for the Removal of Tetracycline by BiFeO3 Immobilized on Copolymer Seeds”. Environmental Research and Technology 5, sy. 2 (Haziran 2022): 128-36. https://doi.org/10.35208/ert.1018193.
EndNote Bilgin Şimşek E, Balta Z (01 Haziran 2022) Investigation of synergetic effect of adsorption and photocatalysis for the removal of tetracycline by BiFeO3 immobilized on copolymer seeds. Environmental Research and Technology 5 2 128–136.
IEEE E. Bilgin Şimşek ve Z. Balta, “Investigation of synergetic effect of adsorption and photocatalysis for the removal of tetracycline by BiFeO3 immobilized on copolymer seeds”, ERT, c. 5, sy. 2, ss. 128–136, 2022, doi: 10.35208/ert.1018193.
ISNAD Bilgin Şimşek, Esra - Balta, Zeynep. “Investigation of Synergetic Effect of Adsorption and Photocatalysis for the Removal of Tetracycline by BiFeO3 Immobilized on Copolymer Seeds”. Environmental Research and Technology 5/2 (Haziran 2022), 128-136. https://doi.org/10.35208/ert.1018193.
JAMA Bilgin Şimşek E, Balta Z. Investigation of synergetic effect of adsorption and photocatalysis for the removal of tetracycline by BiFeO3 immobilized on copolymer seeds. ERT. 2022;5:128–136.
MLA Bilgin Şimşek, Esra ve Zeynep Balta. “Investigation of Synergetic Effect of Adsorption and Photocatalysis for the Removal of Tetracycline by BiFeO3 Immobilized on Copolymer Seeds”. Environmental Research and Technology, c. 5, sy. 2, 2022, ss. 128-36, doi:10.35208/ert.1018193.
Vancouver Bilgin Şimşek E, Balta Z. Investigation of synergetic effect of adsorption and photocatalysis for the removal of tetracycline by BiFeO3 immobilized on copolymer seeds. ERT. 2022;5(2):128-36.