Optimization using RSM-CCD in the fabrication of magnesium-doped bismuth ferrite nanoparticles via sol–gel auto-combustion method for enhanced photocatalytic performance

Magnesium-doped bismuth ferrite (BiFeO3 or BFO) nanoparticles were fabricated through the sol–gel auto-combustion method to increase their photocatalytic performance. The synthesis parameters, specifically annealing temperature (400, 500, and 600°C) and Mg doping concentration (5, 10, 15, 20, and 25...

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Published in:Results in Physics
Main Author: Sulaiman N.F.; Mubin M.H.A.; Gunasekaran S.S.; Sofiah A.G.N.; Chaudhary K.T.; Mohamad S.N.; Ali J.
Format: Article
Language:English
Published: Elsevier B.V. 2025
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85215418941&doi=10.1016%2fj.rinp.2025.108114&partnerID=40&md5=21866295703cb7f9e05c58b1e1efe4e0
id 2-s2.0-85215418941
spelling 2-s2.0-85215418941
Sulaiman N.F.; Mubin M.H.A.; Gunasekaran S.S.; Sofiah A.G.N.; Chaudhary K.T.; Mohamad S.N.; Ali J.
Optimization using RSM-CCD in the fabrication of magnesium-doped bismuth ferrite nanoparticles via sol–gel auto-combustion method for enhanced photocatalytic performance
2025
Results in Physics
69

10.1016/j.rinp.2025.108114
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85215418941&doi=10.1016%2fj.rinp.2025.108114&partnerID=40&md5=21866295703cb7f9e05c58b1e1efe4e0
Magnesium-doped bismuth ferrite (BiFeO3 or BFO) nanoparticles were fabricated through the sol–gel auto-combustion method to increase their photocatalytic performance. The synthesis parameters, specifically annealing temperature (400, 500, and 600°C) and Mg doping concentration (5, 10, 15, 20, and 25 %), were varied to investigate their effects on the photocatalytic degradation of Rhodamine B under simulated solar irradiation. The nanoparticles were then characterized using different analytical techniques to assess their structural, optical, and morphological properties. X-ray diffraction (XRD) results found that the existence of high intensity cubic sillenite phase, Bi25FeO40 as a secondary phase in 25 % Mg-doped bismuth ferrite nanoparticles with a crystallite size of 33.9 nm, which would enhance the photocatalytic performance. Besides, the vibrating sample magnetometer (VSM) analysis showed that the doping of Mg in the bismuth ferrite host structure significantly enhances superparamagnetic and soft ferromagnetic behavior as the dopant concentration increases from 5 to 25 % due to increase in saturation magnetization (from 2.28 emu/g to 6.19 emu/g) and reduction in coercivity (from 88.35 Oe to 49.81 Oe). Field emission scanning electron microscopy-energy dispersive X-ray spectroscopy (FESEM-EDX) micrograph shows the particles were fully crystallized with regular shapes, suggesting a uniform surface morphology. Ultraviolet–visible diffuse reflectance spectroscopy (UV–Vis DRS) found that the band gap narrows to 2.0 eV when introducing Mg doping. Based on the photocatalytic degradation activity of Rhodamine B using Mg-doped bismuth ferrite nanoparticle (annealing temperature of 600 °C, 25 % Mg concentration) successfully achieved 80 % at 60 min, which was verified using response surface methodology (RSM)-central composite design (CCD). The photodegradation reaction followed pseudo-first-order kinetics, with the rate constant for the 25 % Mg-doped bismuth ferrite nanoparticles determined to be 0.02699 min−1. © 2025 The Author(s)
Elsevier B.V.
22113797
English
Article

author Sulaiman N.F.; Mubin M.H.A.; Gunasekaran S.S.; Sofiah A.G.N.; Chaudhary K.T.; Mohamad S.N.; Ali J.
spellingShingle Sulaiman N.F.; Mubin M.H.A.; Gunasekaran S.S.; Sofiah A.G.N.; Chaudhary K.T.; Mohamad S.N.; Ali J.
Optimization using RSM-CCD in the fabrication of magnesium-doped bismuth ferrite nanoparticles via sol–gel auto-combustion method for enhanced photocatalytic performance
author_facet Sulaiman N.F.; Mubin M.H.A.; Gunasekaran S.S.; Sofiah A.G.N.; Chaudhary K.T.; Mohamad S.N.; Ali J.
author_sort Sulaiman N.F.; Mubin M.H.A.; Gunasekaran S.S.; Sofiah A.G.N.; Chaudhary K.T.; Mohamad S.N.; Ali J.
title Optimization using RSM-CCD in the fabrication of magnesium-doped bismuth ferrite nanoparticles via sol–gel auto-combustion method for enhanced photocatalytic performance
title_short Optimization using RSM-CCD in the fabrication of magnesium-doped bismuth ferrite nanoparticles via sol–gel auto-combustion method for enhanced photocatalytic performance
title_full Optimization using RSM-CCD in the fabrication of magnesium-doped bismuth ferrite nanoparticles via sol–gel auto-combustion method for enhanced photocatalytic performance
title_fullStr Optimization using RSM-CCD in the fabrication of magnesium-doped bismuth ferrite nanoparticles via sol–gel auto-combustion method for enhanced photocatalytic performance
title_full_unstemmed Optimization using RSM-CCD in the fabrication of magnesium-doped bismuth ferrite nanoparticles via sol–gel auto-combustion method for enhanced photocatalytic performance
title_sort Optimization using RSM-CCD in the fabrication of magnesium-doped bismuth ferrite nanoparticles via sol–gel auto-combustion method for enhanced photocatalytic performance
publishDate 2025
container_title Results in Physics
container_volume 69
container_issue
doi_str_mv 10.1016/j.rinp.2025.108114
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85215418941&doi=10.1016%2fj.rinp.2025.108114&partnerID=40&md5=21866295703cb7f9e05c58b1e1efe4e0
description Magnesium-doped bismuth ferrite (BiFeO3 or BFO) nanoparticles were fabricated through the sol–gel auto-combustion method to increase their photocatalytic performance. The synthesis parameters, specifically annealing temperature (400, 500, and 600°C) and Mg doping concentration (5, 10, 15, 20, and 25 %), were varied to investigate their effects on the photocatalytic degradation of Rhodamine B under simulated solar irradiation. The nanoparticles were then characterized using different analytical techniques to assess their structural, optical, and morphological properties. X-ray diffraction (XRD) results found that the existence of high intensity cubic sillenite phase, Bi25FeO40 as a secondary phase in 25 % Mg-doped bismuth ferrite nanoparticles with a crystallite size of 33.9 nm, which would enhance the photocatalytic performance. Besides, the vibrating sample magnetometer (VSM) analysis showed that the doping of Mg in the bismuth ferrite host structure significantly enhances superparamagnetic and soft ferromagnetic behavior as the dopant concentration increases from 5 to 25 % due to increase in saturation magnetization (from 2.28 emu/g to 6.19 emu/g) and reduction in coercivity (from 88.35 Oe to 49.81 Oe). Field emission scanning electron microscopy-energy dispersive X-ray spectroscopy (FESEM-EDX) micrograph shows the particles were fully crystallized with regular shapes, suggesting a uniform surface morphology. Ultraviolet–visible diffuse reflectance spectroscopy (UV–Vis DRS) found that the band gap narrows to 2.0 eV when introducing Mg doping. Based on the photocatalytic degradation activity of Rhodamine B using Mg-doped bismuth ferrite nanoparticle (annealing temperature of 600 °C, 25 % Mg concentration) successfully achieved 80 % at 60 min, which was verified using response surface methodology (RSM)-central composite design (CCD). The photodegradation reaction followed pseudo-first-order kinetics, with the rate constant for the 25 % Mg-doped bismuth ferrite nanoparticles determined to be 0.02699 min−1. © 2025 The Author(s)
publisher Elsevier B.V.
issn 22113797
language English
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