Graphene oxide/PVDF VIPS membranes for switchable, versatile and gravity-driven separation of oil and water

碩士 === 中原大學 === 化學工程研究所 === 106 === In what follows, we incorporated graphene oxide (GO) into poly(vinylidene fluoride) (PVDF) membranes prepared by vapor-induced phase separation (VIPS), in order to achieve gravity-driven separation of versatile water-in-oil (W/O) and oil-in-water (O/W) emulsions....

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Main Authors: Ching-Hsueh Chiang, 江慶學
Other Authors: Antoine Venault
Format: Others
Language:en_US
Published: 2018
Online Access:http://ndltd.ncl.edu.tw/handle/vn6rw6
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spelling ndltd-TW-106CYCU50630222019-10-31T05:22:07Z http://ndltd.ncl.edu.tw/handle/vn6rw6 Graphene oxide/PVDF VIPS membranes for switchable, versatile and gravity-driven separation of oil and water 氧化石墨烯共混聚偏二氟乙烯 VIPS薄膜用於可切換、多功能和重力驅動分離油和水 Ching-Hsueh Chiang 江慶學 碩士 中原大學 化學工程研究所 106 In what follows, we incorporated graphene oxide (GO) into poly(vinylidene fluoride) (PVDF) membranes prepared by vapor-induced phase separation (VIPS), in order to achieve gravity-driven separation of versatile water-in-oil (W/O) and oil-in-water (O/W) emulsions. Membranes were first fully characterize to evidence the presence of GO at the interface, using XPS, FT-IR, Raman, and XRD spectroscopy, while SEM permitted to describe the porous structure of the MF membranes. An in-depth study of the wettability of the membranes was carried out through the determination of water contact angles in air and oil, and oil contact angles in air and water, using 4 different oils including toluene, hexane, diesel and soybean oil. It was found that GO did not significantly affect the wettability of the membranes. However, gravity-driven filtration tests performed after pre-wetting the membranes with the dispersing phase forming the emulsion at play revealed that GO could accelerate 8-10 times the separation of both O/W and W/O emulsions. The nature of the dispersing phase probably dictates the orientation of the core and the shell in the GO particles, which in turn favors the permeation of the dispersing phase and accelerates the whole separation. Besides, GO strengthens the interactions with the wetting liquid contributing to totally eliminate air pockets, which in turn prevents the dispersed phase in complex emulsions (involving diesel or soybean oil) to permeate through the pores, and so, improves the separation efficiency despite larger pores. Antoine Venault Yung Chang 費安東 張雍 2018 學位論文 ; thesis 82 en_US
collection NDLTD
language en_US
format Others
sources NDLTD
description 碩士 === 中原大學 === 化學工程研究所 === 106 === In what follows, we incorporated graphene oxide (GO) into poly(vinylidene fluoride) (PVDF) membranes prepared by vapor-induced phase separation (VIPS), in order to achieve gravity-driven separation of versatile water-in-oil (W/O) and oil-in-water (O/W) emulsions. Membranes were first fully characterize to evidence the presence of GO at the interface, using XPS, FT-IR, Raman, and XRD spectroscopy, while SEM permitted to describe the porous structure of the MF membranes. An in-depth study of the wettability of the membranes was carried out through the determination of water contact angles in air and oil, and oil contact angles in air and water, using 4 different oils including toluene, hexane, diesel and soybean oil. It was found that GO did not significantly affect the wettability of the membranes. However, gravity-driven filtration tests performed after pre-wetting the membranes with the dispersing phase forming the emulsion at play revealed that GO could accelerate 8-10 times the separation of both O/W and W/O emulsions. The nature of the dispersing phase probably dictates the orientation of the core and the shell in the GO particles, which in turn favors the permeation of the dispersing phase and accelerates the whole separation. Besides, GO strengthens the interactions with the wetting liquid contributing to totally eliminate air pockets, which in turn prevents the dispersed phase in complex emulsions (involving diesel or soybean oil) to permeate through the pores, and so, improves the separation efficiency despite larger pores.
author2 Antoine Venault
author_facet Antoine Venault
Ching-Hsueh Chiang
江慶學
author Ching-Hsueh Chiang
江慶學
spellingShingle Ching-Hsueh Chiang
江慶學
Graphene oxide/PVDF VIPS membranes for switchable, versatile and gravity-driven separation of oil and water
author_sort Ching-Hsueh Chiang
title Graphene oxide/PVDF VIPS membranes for switchable, versatile and gravity-driven separation of oil and water
title_short Graphene oxide/PVDF VIPS membranes for switchable, versatile and gravity-driven separation of oil and water
title_full Graphene oxide/PVDF VIPS membranes for switchable, versatile and gravity-driven separation of oil and water
title_fullStr Graphene oxide/PVDF VIPS membranes for switchable, versatile and gravity-driven separation of oil and water
title_full_unstemmed Graphene oxide/PVDF VIPS membranes for switchable, versatile and gravity-driven separation of oil and water
title_sort graphene oxide/pvdf vips membranes for switchable, versatile and gravity-driven separation of oil and water
publishDate 2018
url http://ndltd.ncl.edu.tw/handle/vn6rw6
work_keys_str_mv AT chinghsuehchiang grapheneoxidepvdfvipsmembranesforswitchableversatileandgravitydrivenseparationofoilandwater
AT jiāngqìngxué grapheneoxidepvdfvipsmembranesforswitchableversatileandgravitydrivenseparationofoilandwater
AT chinghsuehchiang yǎnghuàshímòxīgònghùnjùpiānèrfúyǐxīvipsbáomóyòngyúkěqièhuànduōgōngnénghézhònglìqūdòngfēnlíyóuhéshuǐ
AT jiāngqìngxué yǎnghuàshímòxīgònghùnjùpiānèrfúyǐxīvipsbáomóyòngyúkěqièhuànduōgōngnénghézhònglìqūdòngfēnlíyóuhéshuǐ
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