Magnetic rod induced asymmetric membrane: Effect of iron oxide composition to phenol removal by adsorption

Particle migration within membranes with different iron oxide compositions was prepared by traditional casting under direct exposure to a magnetic rod. Membrane with 30 wt% of iron oxide (M30) has shown a high concentration of Fe element within its thin layer compared to other membranes with lower i...

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Main Authors: Mohamad Said, Khairul Anwar, Ismail, Ahmad Fauzi, Abdul Karim, Zulhairun, Abdullah, Mohd. Sohaimi, Hafeez, Asif, Azali, Mohd. Ariff
Format: Article
Published: Elsevier Ltd 2021
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Online Access:http://eprints.utm.my/id/eprint/97870/
http://dx.doi.org/10.1016/j.matchemphys.2020.123862
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spelling my.utm.978702022-11-07T10:20:22Z http://eprints.utm.my/id/eprint/97870/ Magnetic rod induced asymmetric membrane: Effect of iron oxide composition to phenol removal by adsorption Mohamad Said, Khairul Anwar Ismail, Ahmad Fauzi Abdul Karim, Zulhairun Abdullah, Mohd. Sohaimi Hafeez, Asif Azali, Mohd. Ariff TP Chemical technology Particle migration within membranes with different iron oxide compositions was prepared by traditional casting under direct exposure to a magnetic rod. Membrane with 30 wt% of iron oxide (M30) has shown a high concentration of Fe element within its thin layer compared to other membranes with lower iron oxide content. The high Fe element in the M30 thin layer has contributed to its porous structure (58.9% porosity), the most porous among the membranes. Hence, it explained the high water flux of the M30 membrane at 75.4 L/m2.h, while the pristine N0 membrane only managed 20.1 L/m2.h. Due to particle migration towards the membrane surface, all magnetically induce membrane were able to obtain a contact angle below 70°, characteristic of a hydrophilic surface. Moreover, due to the accumulation of iron oxide as a result of magnetic casting, the M3 membrane was able to remove 14.1% of phenol with a sieving coefficient of 0.86. To conclude, magnetic induce casting has the capability of orienting and migrating the iron oxide within the membrane matrix without the need for an additional chemical or complicated procedure. Elsevier Ltd 2021 Article PeerReviewed Mohamad Said, Khairul Anwar and Ismail, Ahmad Fauzi and Abdul Karim, Zulhairun and Abdullah, Mohd. Sohaimi and Hafeez, Asif and Azali, Mohd. Ariff (2021) Magnetic rod induced asymmetric membrane: Effect of iron oxide composition to phenol removal by adsorption. Materials Chemistry and Physics, 258 (NA). pp. 1-16. ISSN 0254-0584 http://dx.doi.org/10.1016/j.matchemphys.2020.123862 DOI : 10.1016/j.matchemphys.2020.123862
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TP Chemical technology
spellingShingle TP Chemical technology
Mohamad Said, Khairul Anwar
Ismail, Ahmad Fauzi
Abdul Karim, Zulhairun
Abdullah, Mohd. Sohaimi
Hafeez, Asif
Azali, Mohd. Ariff
Magnetic rod induced asymmetric membrane: Effect of iron oxide composition to phenol removal by adsorption
description Particle migration within membranes with different iron oxide compositions was prepared by traditional casting under direct exposure to a magnetic rod. Membrane with 30 wt% of iron oxide (M30) has shown a high concentration of Fe element within its thin layer compared to other membranes with lower iron oxide content. The high Fe element in the M30 thin layer has contributed to its porous structure (58.9% porosity), the most porous among the membranes. Hence, it explained the high water flux of the M30 membrane at 75.4 L/m2.h, while the pristine N0 membrane only managed 20.1 L/m2.h. Due to particle migration towards the membrane surface, all magnetically induce membrane were able to obtain a contact angle below 70°, characteristic of a hydrophilic surface. Moreover, due to the accumulation of iron oxide as a result of magnetic casting, the M3 membrane was able to remove 14.1% of phenol with a sieving coefficient of 0.86. To conclude, magnetic induce casting has the capability of orienting and migrating the iron oxide within the membrane matrix without the need for an additional chemical or complicated procedure.
format Article
author Mohamad Said, Khairul Anwar
Ismail, Ahmad Fauzi
Abdul Karim, Zulhairun
Abdullah, Mohd. Sohaimi
Hafeez, Asif
Azali, Mohd. Ariff
author_facet Mohamad Said, Khairul Anwar
Ismail, Ahmad Fauzi
Abdul Karim, Zulhairun
Abdullah, Mohd. Sohaimi
Hafeez, Asif
Azali, Mohd. Ariff
author_sort Mohamad Said, Khairul Anwar
title Magnetic rod induced asymmetric membrane: Effect of iron oxide composition to phenol removal by adsorption
title_short Magnetic rod induced asymmetric membrane: Effect of iron oxide composition to phenol removal by adsorption
title_full Magnetic rod induced asymmetric membrane: Effect of iron oxide composition to phenol removal by adsorption
title_fullStr Magnetic rod induced asymmetric membrane: Effect of iron oxide composition to phenol removal by adsorption
title_full_unstemmed Magnetic rod induced asymmetric membrane: Effect of iron oxide composition to phenol removal by adsorption
title_sort magnetic rod induced asymmetric membrane: effect of iron oxide composition to phenol removal by adsorption
publisher Elsevier Ltd
publishDate 2021
url http://eprints.utm.my/id/eprint/97870/
http://dx.doi.org/10.1016/j.matchemphys.2020.123862
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score 13.188404