Optimization of PES-based Hollow fiber membranes incorporating MgO-modified activated carbon via response surface methodology for enhanced pure water permeability

Abstract This research aims to optimize the fabrication of polyethersulfone (PES)-based composite hollow fiber membranes via phase inversion. For this purpose, MgO-modified activated carbon (AC) particles were synthesized and incorporated into the polymer matrix. High-resolution transmission electro...

Full description

Saved in:
Bibliographic Details
Main Authors: Farkhonde Arabloo, Sirus Javadpour
Format: Article
Language:English
Published: Nature Portfolio 2025-08-01
Series:Scientific Reports
Subjects:
Online Access:https://doi.org/10.1038/s41598-025-15140-3
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1849234201301221376
author Farkhonde Arabloo
Sirus Javadpour
author_facet Farkhonde Arabloo
Sirus Javadpour
author_sort Farkhonde Arabloo
collection DOAJ
description Abstract This research aims to optimize the fabrication of polyethersulfone (PES)-based composite hollow fiber membranes via phase inversion. For this purpose, MgO-modified activated carbon (AC) particles were synthesized and incorporated into the polymer matrix. High-resolution transmission electron microscopy (HR-TEM), scanning electron microscopy (SEM), and X-ray diffraction (XRD) were utilized to examine the morphological and chemical properties of the AC-MgO particles. To optimize the fabrication process, the effects of four key parameters: AC-MgO particle concentration (0.09–0.36 wt%), bore fluid flow rate (3.5–9.5 ml/min), dope solution flow rate (1.5–3.5 ml/min), and air gap distance (2–42 cm), were analyzed using response surface methodology (RSM) with a central composite design. The performance of the membranes was assessed in terms of pure water permeability (PWP). The results of experimental tests conducted under the optimal conditions obtained using the RSM method for particle concentration and process parameters were in close agreement with the model predictions, confirming the model’s accuracy. Moreover, it was found that particle concentration and air gap distance significantly influenced membrane performance. The AC-MgO particles significantly enhanced membrane properties by reducing the water contact angle, indicating improved hydrophilicity, and promoting the formation of a more porous membrane structure.
format Article
id doaj-art-e8eb1053f3354b6abb3423fab5007d18
institution Kabale University
issn 2045-2322
language English
publishDate 2025-08-01
publisher Nature Portfolio
record_format Article
series Scientific Reports
spelling doaj-art-e8eb1053f3354b6abb3423fab5007d182025-08-20T04:03:13ZengNature PortfolioScientific Reports2045-23222025-08-0115111810.1038/s41598-025-15140-3Optimization of PES-based Hollow fiber membranes incorporating MgO-modified activated carbon via response surface methodology for enhanced pure water permeabilityFarkhonde Arabloo0Sirus Javadpour1Department of Materials Science & Engineering, School of Engineering, Shiraz UniversityDepartment of Materials Science & Engineering, School of Engineering, Shiraz UniversityAbstract This research aims to optimize the fabrication of polyethersulfone (PES)-based composite hollow fiber membranes via phase inversion. For this purpose, MgO-modified activated carbon (AC) particles were synthesized and incorporated into the polymer matrix. High-resolution transmission electron microscopy (HR-TEM), scanning electron microscopy (SEM), and X-ray diffraction (XRD) were utilized to examine the morphological and chemical properties of the AC-MgO particles. To optimize the fabrication process, the effects of four key parameters: AC-MgO particle concentration (0.09–0.36 wt%), bore fluid flow rate (3.5–9.5 ml/min), dope solution flow rate (1.5–3.5 ml/min), and air gap distance (2–42 cm), were analyzed using response surface methodology (RSM) with a central composite design. The performance of the membranes was assessed in terms of pure water permeability (PWP). The results of experimental tests conducted under the optimal conditions obtained using the RSM method for particle concentration and process parameters were in close agreement with the model predictions, confirming the model’s accuracy. Moreover, it was found that particle concentration and air gap distance significantly influenced membrane performance. The AC-MgO particles significantly enhanced membrane properties by reducing the water contact angle, indicating improved hydrophilicity, and promoting the formation of a more porous membrane structure.https://doi.org/10.1038/s41598-025-15140-3Hollow fiber membraneMorphologyAC-MgO particlesSpinning parametersRSM
spellingShingle Farkhonde Arabloo
Sirus Javadpour
Optimization of PES-based Hollow fiber membranes incorporating MgO-modified activated carbon via response surface methodology for enhanced pure water permeability
Scientific Reports
Hollow fiber membrane
Morphology
AC-MgO particles
Spinning parameters
RSM
title Optimization of PES-based Hollow fiber membranes incorporating MgO-modified activated carbon via response surface methodology for enhanced pure water permeability
title_full Optimization of PES-based Hollow fiber membranes incorporating MgO-modified activated carbon via response surface methodology for enhanced pure water permeability
title_fullStr Optimization of PES-based Hollow fiber membranes incorporating MgO-modified activated carbon via response surface methodology for enhanced pure water permeability
title_full_unstemmed Optimization of PES-based Hollow fiber membranes incorporating MgO-modified activated carbon via response surface methodology for enhanced pure water permeability
title_short Optimization of PES-based Hollow fiber membranes incorporating MgO-modified activated carbon via response surface methodology for enhanced pure water permeability
title_sort optimization of pes based hollow fiber membranes incorporating mgo modified activated carbon via response surface methodology for enhanced pure water permeability
topic Hollow fiber membrane
Morphology
AC-MgO particles
Spinning parameters
RSM
url https://doi.org/10.1038/s41598-025-15140-3
work_keys_str_mv AT farkhondearabloo optimizationofpesbasedhollowfibermembranesincorporatingmgomodifiedactivatedcarbonviaresponsesurfacemethodologyforenhancedpurewaterpermeability
AT sirusjavadpour optimizationofpesbasedhollowfibermembranesincorporatingmgomodifiedactivatedcarbonviaresponsesurfacemethodologyforenhancedpurewaterpermeability