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Surface-Charged PVDF Membrane via Assembly of Charged Hyperbranched Polyglycerol (HPG) for Suppresion of Membrane Fouling : 전하를 도입한 고차가지구조 폴리글리세롤(HPG)의 PVDF 분리막 표면개질에 의한 오염 저감 영향에 대한 연구

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dc.contributor.advisor곽승엽-
dc.contributor.author김예지-
dc.date.accessioned2017-07-14T03:10:28Z-
dc.date.available2017-07-14T03:10:28Z-
dc.date.issued2015-02-
dc.identifier.other000000024867-
dc.identifier.urihttps://hdl.handle.net/10371/123337-
dc.description학위논문 (석사)-- 서울대학교 대학원 : 재료공학부, 2015. 2. 곽승엽.-
dc.description.abstractSurface charged polyvinylidene fluoride (PVDF) ultra/micro (UF/MF) filtration membranes were prepared by covalent assembly of various charged hyperbranched polyglycerol (HPG) to endow fouling resistance against numerous charged water contaminants. First, we prepared three types of charged HPG, i.e., neutral, positive, negative charges, by end-group modification. Next, PVDF flat membranes were treated with plasma irradiation to introduce functional groups, such as O-O, -OOH, -NH2, CONH, etc. Finally, the charged HPG was covalently bonded with the modified membrane surface using phenylene diisocyanate as a linking agent. Successful polymerization and charged modification of HPGs were examined by combined results of Fourier transform infrared (FT-IR) and proton nuclear magnetic resonance (1H-NMR). Attenuated total reflectance (ATR) FT-IR and X-ray photoelectron spectroscopy (XPS) spectra detected addition of the neutral HPG and charged HPGs on the surface of the charge-modified membrane. Enhancement of hydrophilic property of charge-modified membrane without severe change of their morphology was observed by analysis of water contact angle (CA) and field emission scanning electron microscope (FE-SEM). Charge characteristic of membranes were detected by ion exchange capacity (IEC) and zeta potential analysis, revealed successful charge modification. Assessment of anti-fouling property was conducted by charged proteins (bovine serum albumin and lysozyme) contained water. These results indicated that hydrophilic property and electrostatic repulsive force between charged membrane surface and identical charged contaminants decreased foulants adsorption on membrane surface. Therefore, positively or negatively charge-modified membranes exhibited best antifouling performance to co-ionized protein solution. Likewise, the neutral charge-modified membrane showed intermediate performance to both protein solutions. In addition, the charge-modified membranes occurs adsorption of counter charged proteins, which can improve charged protein separation. Thus, membrane surface modification with charged HPG makes eco-friendly membrane, that might be used as application of various wastewater and charged particle-separation.-
dc.description.tableofcontentsCONTENTS

ABSTRACT....................................................................................................i
CONTENTS.................................................................................................iv
1. Introduction ..........................................................................................1
2. Experimental ............................................................................................5
2.1. Materials............................................................................................5
2.2. Synthesis of hyperbranched polyglycerol with precisely one focal amino functionality (NH2-HPG) ………………………………………………………7
2.2.1. Synthesis of N,N-dibenzyl tris(hydroxymethyl) aminomethane (Bz2THAM)…………………………………………………………………7
2.2.2. Synthesis of N,N-dibenzyl tris(hydroxymethyl) aminomethane initiated hyperbranched polyglycerol (Bz2-HPG)............................................8
2.2.3. Deprotection to hyperbranched polyglycerol analogues with exactly one amino group (NH2-HPG) .........................................................................8
2.3. Synthesis of positively charged hyperbranched polyglycerol
(NH2-PHPG) ..............................................................................................9
2.3.1. Synthesis of benzyl protected quarternized ammonium hyperbranched polyglycerol (Bz2-PHPG) ..................................................................................................9
2.3.2. Deprotection to positively charged hyperbranched polyglycerol analogues with exactly one amino group (NH2-HPG)...................................10
2.4. Synthesis of negatively charged hyperbranched polyglycerol
(NH2-NHPG) …………………………………………………………………10
2.4.1. Synthesis of benzyl protected hyperbranched polyglycerol sulfate (Bz2-NHPG)………………………………………………………………10
2.4.2. Deprotection to negatively charged hyperbranched polyglycerol analogues with exactly one amino group (NH2-NHPG) ……………………………11
2.5. Surface modification of PVDF membrane by NH2(EG)HPG……………12
2.5.1. Introduction of functional group into PVDF membrane by plasma treatment……………………………………………………………………12
2.5.2. Grafting NH2(EG)HPG onto the PVDF membrane by
cross linking agent…………………………………………………………12
2.6. Characteristics of membranes…………………………………………21
2.6.1. Analysis of surface chemical compositions……………………21
2.6.2. Membrane morphology ……………………………………………22
2.6.3. Ion-exchange capacity (IEC) determination………………………22
2.6.4. Determination of zeta potentials…………………………………..23
2.7. Evaluation of membrane performance…………………………………….24
2.7.1.Measurement of membrane flux change due to protein fouling
(BSA, Lyz)………………………………………………………………24
2.7.2. Mixed protein separation (BSA-Hb) ………………………………26
3. Results and Discussion ..........................................................................30
3.1. Characteristics of NH2-HPG, NH2-PHPG, NH2-NHPG……………………30
3.1.1. FT-IR and 1H-NMR…………………………………………………30
3.2. Characteristics of membrane ……………………………………………38
3.2.1. ATR-IR and XPS……………………………………………………38
3.2.2. Surface morphology and water contact angle of membrane ………46
3.2.3. Charge Property of membrane surface (IEC and Zeta potential) …50
3.3. Protein ultrafiltration………………………………………………54
4. Conclusions ............................................................................................64
5. References …..........................................................................................66
KOREAN ABSTRACT .............................................................................74
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dc.formatapplication/pdf-
dc.format.extent1833591 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoko-
dc.publisher서울대학교 대학원-
dc.subjectCharge modification-
dc.subjectHyperbranched polyglycerol-
dc.subjectPVDF membrnae-
dc.subjectAntifouling-
dc.subjectProtein separation-
dc.subject.ddc620-
dc.titleSurface-Charged PVDF Membrane via Assembly of Charged Hyperbranched Polyglycerol (HPG) for Suppresion of Membrane Fouling-
dc.title.alternative전하를 도입한 고차가지구조 폴리글리세롤(HPG)의 PVDF 분리막 표면개질에 의한 오염 저감 영향에 대한 연구-
dc.typeThesis-
dc.contributor.AlternativeAuthorKim Ye Ji-
dc.description.degreeMaster-
dc.citation.pagesvi, 78-
dc.contributor.affiliation공과대학 재료공학부-
dc.date.awarded2015-02-
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