Wetting Resistance of Saturated Fatty Acid-Coated PVDF Hollow Fiber Membrane for Efficient Seawater Desalination Via Membrane Distillation

Globally, freshwater scarcity has become critical due to the spiraling demand created by an increasing global population. Hence, seawater desalination was rapidly becoming a key solution for significant growth. One of desalination technologies was membrane distillation (MD). Fluorination techniques...

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发表在:ARABIAN JOURNAL FOR SCIENCE AND ENGINEERING
Main Authors: Iqbal, Rendy Muhamad; Othman, Mohd Hafiz Dzarfan; Mokhter, Mohd Akmali; Khaerudini, Deni Shidqi; Ming, Liew Chia; Fansuri, Hamzah; Puteh, Mohd Hafiz; Rahman, Mazlinda Ab
格式: Article; Early Access
语言:English
出版: SPRINGER HEIDELBERG 2025
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在线阅读:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001438909100001
author Iqbal
Rendy Muhamad; Othman
Mohd Hafiz Dzarfan; Mokhter
Mohd Akmali; Khaerudini
Deni Shidqi; Ming
Liew Chia; Fansuri
Hamzah; Puteh
Mohd Hafiz; Rahman
Mazlinda Ab
spellingShingle Iqbal
Rendy Muhamad; Othman
Mohd Hafiz Dzarfan; Mokhter
Mohd Akmali; Khaerudini
Deni Shidqi; Ming
Liew Chia; Fansuri
Hamzah; Puteh
Mohd Hafiz; Rahman
Mazlinda Ab
Wetting Resistance of Saturated Fatty Acid-Coated PVDF Hollow Fiber Membrane for Efficient Seawater Desalination Via Membrane Distillation
Science & Technology - Other Topics
author_facet Iqbal
Rendy Muhamad; Othman
Mohd Hafiz Dzarfan; Mokhter
Mohd Akmali; Khaerudini
Deni Shidqi; Ming
Liew Chia; Fansuri
Hamzah; Puteh
Mohd Hafiz; Rahman
Mazlinda Ab
author_sort Iqbal
spelling Iqbal, Rendy Muhamad; Othman, Mohd Hafiz Dzarfan; Mokhter, Mohd Akmali; Khaerudini, Deni Shidqi; Ming, Liew Chia; Fansuri, Hamzah; Puteh, Mohd Hafiz; Rahman, Mazlinda Ab
Wetting Resistance of Saturated Fatty Acid-Coated PVDF Hollow Fiber Membrane for Efficient Seawater Desalination Via Membrane Distillation
ARABIAN JOURNAL FOR SCIENCE AND ENGINEERING
English
Article; Early Access
Globally, freshwater scarcity has become critical due to the spiraling demand created by an increasing global population. Hence, seawater desalination was rapidly becoming a key solution for significant growth. One of desalination technologies was membrane distillation (MD). Fluorination techniques have traditionally created hydrophobic membranes for MD. Saturated fatty acids (SFAs) serve as an intriguing alternative to enterprise nonfluorination approaches. We examined the influence of selected SFA (lauric, myristic, palmitic and stearic acids) on properties as well membrane performance in MD process for polyvinine fluoride (PVDF) hollow fiber membranes. Membranes were prepared by dip coating the as-synthesized membrane in 1% SFA solution. The characterization included scanning electron microscopy, atomic force microscopy as well as tests of liquid entry pressure, coating stability, and the performance in direct contact membrane distillation (DCMD). Membranes coated with myristic, palmitic and stearic acid exhibited water contact angles > 90 degrees, illustrating anti-wettability improvements. The stearic acid-coated membrane displayed the largest water vapor flux (18.4 L/m2 h) and almost 100% salt rejection, being worthy to mention among others. The corresponding results confirm that the stearic acid may well be a better coating for PVDF membrane modification in DCMD desalination of seawater.
SPRINGER HEIDELBERG
2193-567X
2191-4281
2025


10.1007/s13369-025-10075-3
Science & Technology - Other Topics

WOS:001438909100001
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001438909100001
title Wetting Resistance of Saturated Fatty Acid-Coated PVDF Hollow Fiber Membrane for Efficient Seawater Desalination Via Membrane Distillation
title_short Wetting Resistance of Saturated Fatty Acid-Coated PVDF Hollow Fiber Membrane for Efficient Seawater Desalination Via Membrane Distillation
title_full Wetting Resistance of Saturated Fatty Acid-Coated PVDF Hollow Fiber Membrane for Efficient Seawater Desalination Via Membrane Distillation
title_fullStr Wetting Resistance of Saturated Fatty Acid-Coated PVDF Hollow Fiber Membrane for Efficient Seawater Desalination Via Membrane Distillation
title_full_unstemmed Wetting Resistance of Saturated Fatty Acid-Coated PVDF Hollow Fiber Membrane for Efficient Seawater Desalination Via Membrane Distillation
title_sort Wetting Resistance of Saturated Fatty Acid-Coated PVDF Hollow Fiber Membrane for Efficient Seawater Desalination Via Membrane Distillation
container_title ARABIAN JOURNAL FOR SCIENCE AND ENGINEERING
language English
format Article; Early Access
description Globally, freshwater scarcity has become critical due to the spiraling demand created by an increasing global population. Hence, seawater desalination was rapidly becoming a key solution for significant growth. One of desalination technologies was membrane distillation (MD). Fluorination techniques have traditionally created hydrophobic membranes for MD. Saturated fatty acids (SFAs) serve as an intriguing alternative to enterprise nonfluorination approaches. We examined the influence of selected SFA (lauric, myristic, palmitic and stearic acids) on properties as well membrane performance in MD process for polyvinine fluoride (PVDF) hollow fiber membranes. Membranes were prepared by dip coating the as-synthesized membrane in 1% SFA solution. The characterization included scanning electron microscopy, atomic force microscopy as well as tests of liquid entry pressure, coating stability, and the performance in direct contact membrane distillation (DCMD). Membranes coated with myristic, palmitic and stearic acid exhibited water contact angles > 90 degrees, illustrating anti-wettability improvements. The stearic acid-coated membrane displayed the largest water vapor flux (18.4 L/m2 h) and almost 100% salt rejection, being worthy to mention among others. The corresponding results confirm that the stearic acid may well be a better coating for PVDF membrane modification in DCMD desalination of seawater.
publisher SPRINGER HEIDELBERG
issn 2193-567X
2191-4281
publishDate 2025
container_volume
container_issue
doi_str_mv 10.1007/s13369-025-10075-3
topic Science & Technology - Other Topics
topic_facet Science & Technology - Other Topics
accesstype
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url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001438909100001
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