Control of membrane surface roughness and pattern wave length by changing the nonsolvent (water) influx rate

The control of surface roughness of polyvinylidene fluoride (PVDF), polyethersulfone (PES), polysulfone (PS) and cellulose (CE) membranes was attempted by changing the rate of nonsolvent influx in the phase inversion process. PVDF and CE were chosen to represent membranes of high hydrophobicity and...

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Main Authors: Khulbe, K. C., Feng, C. Y., Matsuura, Takeshi, Lau, Woei Jye, Halakoo, E., Gohari, R. Jamshidi, Ismail, Ahmad Fauzi
Format: Article
Published: Lifescience Global 2015
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Online Access:http://eprints.utm.my/id/eprint/60172/
http://dx.doi.org/10.6000/1929-6037.2015.04.01.3
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spelling my.utm.601722022-04-05T02:34:42Z http://eprints.utm.my/id/eprint/60172/ Control of membrane surface roughness and pattern wave length by changing the nonsolvent (water) influx rate Khulbe, K. C. Feng, C. Y. Matsuura, Takeshi Lau, Woei Jye Halakoo, E. Gohari, R. Jamshidi Ismail, Ahmad Fauzi TP Chemical technology The control of surface roughness of polyvinylidene fluoride (PVDF), polyethersulfone (PES), polysulfone (PS) and cellulose (CE) membranes was attempted by changing the rate of nonsolvent influx in the phase inversion process. PVDF and CE were chosen to represent membranes of high hydrophobicity and hydrophilicity, respectively, while PES and PS were chosen to represent membranes of intermediate hydrophobicity/-philicity. The concentration of sodium chloride (NaCl) in the aqueous coagulation medium was increased from 0 to 1.9 mol/L to decrease the rate of nonsolvent (water) influx in the solvent/nonsolvent exchange process. As well, the effect of polymer concentration and solvent on the surface roughness was investigated with respect to PVDF and PES. It was observed that the membrane surface roughness increased and decreased, respectively, for the hydrophobic PVDF and hydrophilic CE membrane as the rate of nonsolvent influx was decreased. For the PES and PS membranes of intermediate hydrophilic/-philicity, no significant roughness change was observed. The surface roughness tended to increase as the solution viscosity decreased. It was also observed that the pattern wave length of the hydrophobic membrane did not change significantly while that of the hydrophilic membrane increased significantly as the solvent influx rate was reduced. This trend is predictable by considering the shrinking or swelling of the cast polymer solution during the solvent/nonsolvent exchange process. Lifescience Global 2015 Article PeerReviewed Khulbe, K. C. and Feng, C. Y. and Matsuura, Takeshi and Lau, Woei Jye and Halakoo, E. and Gohari, R. Jamshidi and Ismail, Ahmad Fauzi (2015) Control of membrane surface roughness and pattern wave length by changing the nonsolvent (water) influx rate. Journal Of Membrane And Separation Technology, 4 . pp. 15-24. ISSN 1929-6037 http://dx.doi.org/10.6000/1929-6037.2015.04.01.3
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
Khulbe, K. C.
Feng, C. Y.
Matsuura, Takeshi
Lau, Woei Jye
Halakoo, E.
Gohari, R. Jamshidi
Ismail, Ahmad Fauzi
Control of membrane surface roughness and pattern wave length by changing the nonsolvent (water) influx rate
description The control of surface roughness of polyvinylidene fluoride (PVDF), polyethersulfone (PES), polysulfone (PS) and cellulose (CE) membranes was attempted by changing the rate of nonsolvent influx in the phase inversion process. PVDF and CE were chosen to represent membranes of high hydrophobicity and hydrophilicity, respectively, while PES and PS were chosen to represent membranes of intermediate hydrophobicity/-philicity. The concentration of sodium chloride (NaCl) in the aqueous coagulation medium was increased from 0 to 1.9 mol/L to decrease the rate of nonsolvent (water) influx in the solvent/nonsolvent exchange process. As well, the effect of polymer concentration and solvent on the surface roughness was investigated with respect to PVDF and PES. It was observed that the membrane surface roughness increased and decreased, respectively, for the hydrophobic PVDF and hydrophilic CE membrane as the rate of nonsolvent influx was decreased. For the PES and PS membranes of intermediate hydrophilic/-philicity, no significant roughness change was observed. The surface roughness tended to increase as the solution viscosity decreased. It was also observed that the pattern wave length of the hydrophobic membrane did not change significantly while that of the hydrophilic membrane increased significantly as the solvent influx rate was reduced. This trend is predictable by considering the shrinking or swelling of the cast polymer solution during the solvent/nonsolvent exchange process.
format Article
author Khulbe, K. C.
Feng, C. Y.
Matsuura, Takeshi
Lau, Woei Jye
Halakoo, E.
Gohari, R. Jamshidi
Ismail, Ahmad Fauzi
author_facet Khulbe, K. C.
Feng, C. Y.
Matsuura, Takeshi
Lau, Woei Jye
Halakoo, E.
Gohari, R. Jamshidi
Ismail, Ahmad Fauzi
author_sort Khulbe, K. C.
title Control of membrane surface roughness and pattern wave length by changing the nonsolvent (water) influx rate
title_short Control of membrane surface roughness and pattern wave length by changing the nonsolvent (water) influx rate
title_full Control of membrane surface roughness and pattern wave length by changing the nonsolvent (water) influx rate
title_fullStr Control of membrane surface roughness and pattern wave length by changing the nonsolvent (water) influx rate
title_full_unstemmed Control of membrane surface roughness and pattern wave length by changing the nonsolvent (water) influx rate
title_sort control of membrane surface roughness and pattern wave length by changing the nonsolvent (water) influx rate
publisher Lifescience Global
publishDate 2015
url http://eprints.utm.my/id/eprint/60172/
http://dx.doi.org/10.6000/1929-6037.2015.04.01.3
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score 13.211869