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Hydrophilic and organophilic pervaporation of industrially important α,β and α,ω-diols

The distillation-based purification of α,β and α,ω-diols is energy and resource intensive, as well as time consuming. Pervaporation separation is considered to be a remarkable energy efficient membrane technology for purification of diols. Thus, as a core pervaporation process, hydrophilic polyvinyl...

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Autores principales: Chaudhari, Shivshankar, Shin, HyeonTae, Choi, SeoungYong, Cho, KieYong, Shon, MinYoung, Nam, SeungEun, Park, YouIn
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8695363/
https://www.ncbi.nlm.nih.gov/pubmed/35423423
http://dx.doi.org/10.1039/d1ra00467k
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author Chaudhari, Shivshankar
Shin, HyeonTae
Choi, SeoungYong
Cho, KieYong
Shon, MinYoung
Nam, SeungEun
Park, YouIn
author_facet Chaudhari, Shivshankar
Shin, HyeonTae
Choi, SeoungYong
Cho, KieYong
Shon, MinYoung
Nam, SeungEun
Park, YouIn
author_sort Chaudhari, Shivshankar
collection PubMed
description The distillation-based purification of α,β and α,ω-diols is energy and resource intensive, as well as time consuming. Pervaporation separation is considered to be a remarkable energy efficient membrane technology for purification of diols. Thus, as a core pervaporation process, hydrophilic polyvinyl alcohol (PVA) membranes for the removal of water from 1,2-hexanediol (1,2-HDO) and organophilic polydimethylsiloxane–polysulfone (PDMS–PSF) membranes for the removal of isopropanol from 1,5 pentanediol (1,5-PDO) were employed. For 1,2-HDO/water separation using a feed having a 1 : 4 weight ratio of 1,2-HDO/water, the membrane prepared using 4 vol% glutaraldehyde (GA4) showed the best performance, yielding a flux of 0.59 kg m(−2) h(−1) and a separation factor of 175 at 40 °C. In the organophilic pervaporation separation of the 1,5-PDO/IPA feed having a 9 : 1 weight ratio of components, the PDMS membrane prepared with a molar ratio of TEOS alkoxy groups to PDMS hydroxyl groups of 70 yielded a flux of 0.12 kg m(−2) h(−1) and separation factor of 17 638 at 40 °C. Long term stability analysis found that both hydrophilic (PVA) and organophilic (PDMS) membranes retained excellent pervaporation output over 18 days' continuous exposure to the feed. Both the hydrophilic and organophilic membranes exhibited promising separation performance at elevated operating conditions, showing their great potential for purification of α,β and α,ω-diols.
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spelling pubmed-86953632022-04-13 Hydrophilic and organophilic pervaporation of industrially important α,β and α,ω-diols Chaudhari, Shivshankar Shin, HyeonTae Choi, SeoungYong Cho, KieYong Shon, MinYoung Nam, SeungEun Park, YouIn RSC Adv Chemistry The distillation-based purification of α,β and α,ω-diols is energy and resource intensive, as well as time consuming. Pervaporation separation is considered to be a remarkable energy efficient membrane technology for purification of diols. Thus, as a core pervaporation process, hydrophilic polyvinyl alcohol (PVA) membranes for the removal of water from 1,2-hexanediol (1,2-HDO) and organophilic polydimethylsiloxane–polysulfone (PDMS–PSF) membranes for the removal of isopropanol from 1,5 pentanediol (1,5-PDO) were employed. For 1,2-HDO/water separation using a feed having a 1 : 4 weight ratio of 1,2-HDO/water, the membrane prepared using 4 vol% glutaraldehyde (GA4) showed the best performance, yielding a flux of 0.59 kg m(−2) h(−1) and a separation factor of 175 at 40 °C. In the organophilic pervaporation separation of the 1,5-PDO/IPA feed having a 9 : 1 weight ratio of components, the PDMS membrane prepared with a molar ratio of TEOS alkoxy groups to PDMS hydroxyl groups of 70 yielded a flux of 0.12 kg m(−2) h(−1) and separation factor of 17 638 at 40 °C. Long term stability analysis found that both hydrophilic (PVA) and organophilic (PDMS) membranes retained excellent pervaporation output over 18 days' continuous exposure to the feed. Both the hydrophilic and organophilic membranes exhibited promising separation performance at elevated operating conditions, showing their great potential for purification of α,β and α,ω-diols. The Royal Society of Chemistry 2021-03-01 /pmc/articles/PMC8695363/ /pubmed/35423423 http://dx.doi.org/10.1039/d1ra00467k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Chaudhari, Shivshankar
Shin, HyeonTae
Choi, SeoungYong
Cho, KieYong
Shon, MinYoung
Nam, SeungEun
Park, YouIn
Hydrophilic and organophilic pervaporation of industrially important α,β and α,ω-diols
title Hydrophilic and organophilic pervaporation of industrially important α,β and α,ω-diols
title_full Hydrophilic and organophilic pervaporation of industrially important α,β and α,ω-diols
title_fullStr Hydrophilic and organophilic pervaporation of industrially important α,β and α,ω-diols
title_full_unstemmed Hydrophilic and organophilic pervaporation of industrially important α,β and α,ω-diols
title_short Hydrophilic and organophilic pervaporation of industrially important α,β and α,ω-diols
title_sort hydrophilic and organophilic pervaporation of industrially important α,β and α,ω-diols
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8695363/
https://www.ncbi.nlm.nih.gov/pubmed/35423423
http://dx.doi.org/10.1039/d1ra00467k
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