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Preparation and characterization of cellulose nanofibril aerogel cross-linked with maleic acid and sodium hypophosphite : 말레인산과 차아인산나트륨을 이용한 가교 결합된 셀룰로오스 나노피브릴 에어로젤의 제조 및 특성 연구

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dc.contributor.advisor이학래-
dc.contributor.author김채훈-
dc.date.accessioned2017-07-13T17:43:15Z-
dc.date.available2017-07-13T17:43:15Z-
dc.date.issued2015-02-
dc.identifier.other000000026584-
dc.identifier.urihttps://hdl.handle.net/10371/121076-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 산림과학부, 2015. 2. 이학래.-
dc.description.abstractCellulose nanofibril (CNF) is defined as a nano-scale fibrous material which can be obtained from cellulose fiber by means of a mechanical shearing action. Its diameter is in the range of 5 – 50 nm and its length is typically several micrometers. CNF is being studied by academia and industry for various applications-
dc.description.abstracthowever, the most promising of these is considered to be as a starting material for the preparation of cellulose aerogel. An aqueous suspension of CNF produces a homogeneous hydrogel structure at a concentration of 1 wt % due to mechanical entanglement and interfibrillar hydrogen bonding. This unique capability of CNF to build up a self-assembled hydrogel structure allows for the preparation of a highly porous aerogel through direct water removal by means of freeze-drying. However, the network structure of CNF aerogels is built by interfibrillar hydrogen bonds between adjacent individual fibers. As a result, the network structure of CNF aerogel is easily destroyed by absorbed water. This weakness of the wet strength limits the wider application of the CNF aerogel.
In this research, a cross-linked CNF aerogel was prepared. As cross-linking agents, maleic acid and hypophosphite were used. The cross-linking reaction was composed of esterification between maleic acid and cellulose in a suspension state and the formation of cross-linking by means of chemical bonds between cellulose-grafted maleic acid and hypophosphite in an aerogel state. Through this cross-linking reaction, the network stability of the CNF aerogel in a wet state was reinforced. Unlike typical CNF aerogels, the cross-linked CNF aerogel maintained its original shape after immersion in water under a mild shear condition. Moreover, the cross-linked CNF aerogel was rapidly able to absorb considerable amounts of water. The cross-linked CNF aerogel exhibited shape-recovery characteristics as well in a wet state. The shape-recovery characteristics of the wet cross-linked CNF aerogel were explained in terms of the interaction between the absorbed water and the amorphous region of the CNF.
As potential applications, carrying media or a supporting matrix for precious materials are feasible. In order to evaluate the potential applicability of these suggestions, the ion-adsorption performance of the cross-linked CNF aerogel was investigated. The surface charge of CNF was made positive by means of a surface modification with glycidyltrimethylammonium chloride (GTMAC). Through an etherification process, GTMAC was grafted onto the surface of the CNF and the zeta potential of the cationic CNF was then increased to +39.5 mV. From the cationically modified CNF, a positively charged cross-linked CNF aerogel was prepared. The functional groups generating the surface charge of the positively charged cross-linked CNF aerogels were quaternary ammonium and carboxylic groups. For the negatively charged cross-linked CNF aerogel, only carboxyl groups contributed to the surface charge. As a result, the zeta potential of both cross-linked CNF aerogels was affected by the pH of the aqueous media. The pH also affected the ion-adsorption performance of the cross-linked CNF aerogels. An adsorption isotherm was carried out and the theoretical maximum adsorption performances of the cross-linked CNF aerogels were calculated using the Langmuir adsorption model. The ns value, representing the maximum ion-absorption capacity of the negatively charged cross-linked CNF aerogel, was 0.79 mmol/g for nickel ion, while the ns value of the positively charged aerogel was 0.62 mmol/g for permanganate ions. These values are low relative to previously reported performance levels of chemically modified micro-particular cellulose absorbent materials, but they are higher than those of commercially available strong acid ion-exchange resins.
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dc.description.tableofcontentsChapter 1
Introduction --------------------------------------------------------------------------1

1. Introduction---------------------------------------------------------------------------2
2. Objectives of the study--------------------------------------------------------------5
3. Literature review---------------------------------------------------------------------6
3.1. Mechanical treatments for the preparation of CNF -------------------------6
3.2. Pretreatments for the preparation of CNF ------------------------------------8
3.3. Surface modification of cellulose nanomaterials----------------------------11
3.4. Preparation of cellulose aerogel-----------------------------------------------15
3.4.1. Cellulose aerogel made by dissolving cellulose-------------------------15
3.4.2. Cellulose aerogel made from aqueous cellulose nanofibers-----------17
3.5. Functionalization of cellulose aerogel----------------------------------------19

Chapter 2
Preparation of cross-linked cellulose nanofibril aerogel-------------21

1. Introduction-------------------------------------------------------------------------22
2. Materials and methods-------------------------------------------------------------24
2.1. Preparation of cellulose nanofibril--------------------------------------------24
2.2. Preparation of cross-linked CNF aerogel------------------------------------28
2.2.1. Esterification of CNF with maleic acid-----------------------------------28
2.2.2. Preparation of CNF aerogel by freeze-drying of CNF hydrogel------30
2.2.3. Formation of cellulose cross-linking--------------------------------------31
2.3. Characterization of cross-linked CNF aerogel------------------------------32
2.3.1. FT-IR spectroscopy---------------------------------------------------------32
2.3.2. Carboxyl content of CNF-MA---------------------------------------------32
2.3.2. Moisture sorption measurement-------------------------------------------34
2.3.3. Compressive strength and shape recovery test--------------------------35
2.3.4. Cross-sectional observation of CNF aerogel-----------------------------38
2.3.5. Specific surface area--------------------------------------------------------39
3. Results and Discussion-------------------------------------------------------------40
3.1. Esterification of CNF with maleic acid---------------------------------------40
3.2. Cross-linking of cellulose------------------------------------------------------46
3.3. Internal structure of CNF aerogel---------------------------------------------47
3.4. Response of the cross-linked CNF aerogel to moisture--------------------50
3.5. Mechanical strength and shape recovery of the cross-linked
CNF aerogel --------------------------------------------------------------------54
3.6. Effect of the reaction condition on the cross-linked
CNF aerogel properties-------------------------------------------------------66
4. Summary----------------------------------------------------------------------------72

Chapter 3
Cationic modification of cellulose nanofibril ---------------------------73

1. Introduction-------------------------------------------------------------------------74
2. Materials and methods-------------------------------------------------------------75
2.1. Preparation of CNF-------------------------------------------------------------75
2.2. Dewatering of CNF suspension-----------------------------------------------75
2.3. Preparation of cationic CNF---------------------------------------------------76
2.4. Characterization of cationic modified CNF----------------------------------78
2.4.1. Zeta potential----------------------------------------------------------------78
2.4.2. Nitrogen content measurement--------------------------------------------78
3. Result and discussion--------------------------------------------------------------79
3.1. Etherification of cellulose by GTMAC---------------------------------------79
3.2. Degree of substitution and reaction efficiency-----------------------------85
4. Summary----------------------------------------------------------------------------90

Chapter 4
Ion adsorption property of cross-linked cellulose nanofibril
aerogel--------------------------------------------------------------------------91

1. Introduction-------------------------------------------------------------------------92
2. Materials and methods-------------------------------------------------------------94
2.1. Preparation of CNF-------------------------------------------------------------94
2.2. Cationic modification of CNF-------------------------------------------------94
2.3. Preparation of cross-linked CNF aerogel with negative and
positive charge------------------------------------------------------------------95
2.5. Measurement of zeta potential of CNF-MA and CNF-GTMAC-MA---96
2.6. Evaluation of ion adsorption properties-------------------------------------97
3. Results and discussion-------------------------------------------------------------98

3.1. Chemical stability of cationic modified CNF during
maleic acid esterification process---------------------------------------------98
3.2. Zeta potential of CNF-MA and CNF-GTMAC-MA-----------------------99
3.3. Effect of pH of solution on adsorption--------------------------------------105
3.4. Contact time for adsorption equilibrium-----------------------------------107
3.5. Maximum adsorption capacity of cross-linked CNF aerogel------------109
4. Summary---------------------------------------------------------------------------114

Chapter 5
Overall conclusions---------------------------------------------------------115

References--------------------------------------------------------------------120

초록 ---------------------------------------------------------------------------------135
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dc.formatapplication/pdf-
dc.format.extent3272306 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectcellulose nanofibril-
dc.subjectaerogel-
dc.subjectcross-linking-
dc.subjectshape recovery-
dc.subjectcationic modification-
dc.subjection adsorption-
dc.subject.ddc634-
dc.titlePreparation and characterization of cellulose nanofibril aerogel cross-linked with maleic acid and sodium hypophosphite-
dc.title.alternative말레인산과 차아인산나트륨을 이용한 가교 결합된 셀룰로오스 나노피브릴 에어로젤의 제조 및 특성 연구-
dc.typeThesis-
dc.contributor.AlternativeAuthorChae Hoon Kim-
dc.description.degreeDoctor-
dc.citation.pages137-
dc.contributor.affiliation농업생명과학대학 산림과학부-
dc.date.awarded2015-02-
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