Cargando…

Enhanced photocatalytic degradation of amoxicillin using a spinning disc photocatalytic reactor (SDPR) with a novel Fe(3)O(4)@void@CuO/ZnO yolk-shell thin film nanostructure

Antibiotics are resistant compounds with low biological degradation that generally cannot be removed by conventional wastewater treatment processes. The use of yolk-shell nanostructures in spinning disc photocatalytic reactor (SDPR) enhances the removal efficiency due to their high surface-to-volume...

Descripción completa

Detalles Bibliográficos
Autores principales: Fallahizadeh, Saeid, Gholami, Mitra, Rahimi, Mahmood Reza, Esrafili, Ali, Farzadkia, Mahdi, Kermani, Majid
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10533499/
https://www.ncbi.nlm.nih.gov/pubmed/37758793
http://dx.doi.org/10.1038/s41598-023-43437-8
_version_ 1785112196046389248
author Fallahizadeh, Saeid
Gholami, Mitra
Rahimi, Mahmood Reza
Esrafili, Ali
Farzadkia, Mahdi
Kermani, Majid
author_facet Fallahizadeh, Saeid
Gholami, Mitra
Rahimi, Mahmood Reza
Esrafili, Ali
Farzadkia, Mahdi
Kermani, Majid
author_sort Fallahizadeh, Saeid
collection PubMed
description Antibiotics are resistant compounds with low biological degradation that generally cannot be removed by conventional wastewater treatment processes. The use of yolk-shell nanostructures in spinning disc photocatalytic reactor (SDPR) enhances the removal efficiency due to their high surface-to-volume ratio and increased interaction between catalyst particles and reactants. The purpose of this study is to investigate the SDPR equipped to Fe(3)O(4)@void@CuO/ZnO yolk-shell thin film nanostructure (FCZ YS) in the presence of visible light illumination in the photocatalytic degradation of amoxicillin (AMX) from aqueous solutions. Stober, co-precipitation, and self-transformation methods were used for the synthesis of FCZ YS thin film nanostructure and the physical and chemical characteristics of the catalyst were analyzed by XRD, VSM,, EDX, FESEM, TEM, AFM, BET, contact angle (CA), and DRS. Then, the effect of different parameters including pH (3–11), initial concentration of AMX (10–50 mg/L), flow rate (10–25 mL/s) and rotational speed (100–400 rpm) at different times in the photocatalytic degradation of AMX were studied. The obtained results indicated that the highest degradation efficiency of 97.6% and constant reaction rate of AMX were obtained under LED visible light illumination and optimal conditions of pH = 5, initial AMX concentration of 30 mg/L, solution flow rate of 15 mL/s, rotational speed of 300 rpm and illumination time of 80 min. The durability and reusability of the nanostructure were tested, that after 5 runs had a suitable degradation rate. Considering the appropriate efficiency of amoxicillin degradation by FCZ YS nanostructure, the use of Fe(3)O(4)@void@CuO/ZnO thin film in SDPR is suggested in water and wastewater treatment processes.
format Online
Article
Text
id pubmed-10533499
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Nature Publishing Group UK
record_format MEDLINE/PubMed
spelling pubmed-105334992023-09-29 Enhanced photocatalytic degradation of amoxicillin using a spinning disc photocatalytic reactor (SDPR) with a novel Fe(3)O(4)@void@CuO/ZnO yolk-shell thin film nanostructure Fallahizadeh, Saeid Gholami, Mitra Rahimi, Mahmood Reza Esrafili, Ali Farzadkia, Mahdi Kermani, Majid Sci Rep Article Antibiotics are resistant compounds with low biological degradation that generally cannot be removed by conventional wastewater treatment processes. The use of yolk-shell nanostructures in spinning disc photocatalytic reactor (SDPR) enhances the removal efficiency due to their high surface-to-volume ratio and increased interaction between catalyst particles and reactants. The purpose of this study is to investigate the SDPR equipped to Fe(3)O(4)@void@CuO/ZnO yolk-shell thin film nanostructure (FCZ YS) in the presence of visible light illumination in the photocatalytic degradation of amoxicillin (AMX) from aqueous solutions. Stober, co-precipitation, and self-transformation methods were used for the synthesis of FCZ YS thin film nanostructure and the physical and chemical characteristics of the catalyst were analyzed by XRD, VSM,, EDX, FESEM, TEM, AFM, BET, contact angle (CA), and DRS. Then, the effect of different parameters including pH (3–11), initial concentration of AMX (10–50 mg/L), flow rate (10–25 mL/s) and rotational speed (100–400 rpm) at different times in the photocatalytic degradation of AMX were studied. The obtained results indicated that the highest degradation efficiency of 97.6% and constant reaction rate of AMX were obtained under LED visible light illumination and optimal conditions of pH = 5, initial AMX concentration of 30 mg/L, solution flow rate of 15 mL/s, rotational speed of 300 rpm and illumination time of 80 min. The durability and reusability of the nanostructure were tested, that after 5 runs had a suitable degradation rate. Considering the appropriate efficiency of amoxicillin degradation by FCZ YS nanostructure, the use of Fe(3)O(4)@void@CuO/ZnO thin film in SDPR is suggested in water and wastewater treatment processes. Nature Publishing Group UK 2023-09-27 /pmc/articles/PMC10533499/ /pubmed/37758793 http://dx.doi.org/10.1038/s41598-023-43437-8 Text en © The Author(s) 2023 https://creativecommons.org/licenses/by/4.0/Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article's Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Fallahizadeh, Saeid
Gholami, Mitra
Rahimi, Mahmood Reza
Esrafili, Ali
Farzadkia, Mahdi
Kermani, Majid
Enhanced photocatalytic degradation of amoxicillin using a spinning disc photocatalytic reactor (SDPR) with a novel Fe(3)O(4)@void@CuO/ZnO yolk-shell thin film nanostructure
title Enhanced photocatalytic degradation of amoxicillin using a spinning disc photocatalytic reactor (SDPR) with a novel Fe(3)O(4)@void@CuO/ZnO yolk-shell thin film nanostructure
title_full Enhanced photocatalytic degradation of amoxicillin using a spinning disc photocatalytic reactor (SDPR) with a novel Fe(3)O(4)@void@CuO/ZnO yolk-shell thin film nanostructure
title_fullStr Enhanced photocatalytic degradation of amoxicillin using a spinning disc photocatalytic reactor (SDPR) with a novel Fe(3)O(4)@void@CuO/ZnO yolk-shell thin film nanostructure
title_full_unstemmed Enhanced photocatalytic degradation of amoxicillin using a spinning disc photocatalytic reactor (SDPR) with a novel Fe(3)O(4)@void@CuO/ZnO yolk-shell thin film nanostructure
title_short Enhanced photocatalytic degradation of amoxicillin using a spinning disc photocatalytic reactor (SDPR) with a novel Fe(3)O(4)@void@CuO/ZnO yolk-shell thin film nanostructure
title_sort enhanced photocatalytic degradation of amoxicillin using a spinning disc photocatalytic reactor (sdpr) with a novel fe(3)o(4)@void@cuo/zno yolk-shell thin film nanostructure
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10533499/
https://www.ncbi.nlm.nih.gov/pubmed/37758793
http://dx.doi.org/10.1038/s41598-023-43437-8
work_keys_str_mv AT fallahizadehsaeid enhancedphotocatalyticdegradationofamoxicillinusingaspinningdiscphotocatalyticreactorsdprwithanovelfe3o4voidcuoznoyolkshellthinfilmnanostructure
AT gholamimitra enhancedphotocatalyticdegradationofamoxicillinusingaspinningdiscphotocatalyticreactorsdprwithanovelfe3o4voidcuoznoyolkshellthinfilmnanostructure
AT rahimimahmoodreza enhancedphotocatalyticdegradationofamoxicillinusingaspinningdiscphotocatalyticreactorsdprwithanovelfe3o4voidcuoznoyolkshellthinfilmnanostructure
AT esrafiliali enhancedphotocatalyticdegradationofamoxicillinusingaspinningdiscphotocatalyticreactorsdprwithanovelfe3o4voidcuoznoyolkshellthinfilmnanostructure
AT farzadkiamahdi enhancedphotocatalyticdegradationofamoxicillinusingaspinningdiscphotocatalyticreactorsdprwithanovelfe3o4voidcuoznoyolkshellthinfilmnanostructure
AT kermanimajid enhancedphotocatalyticdegradationofamoxicillinusingaspinningdiscphotocatalyticreactorsdprwithanovelfe3o4voidcuoznoyolkshellthinfilmnanostructure