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Multi-Core Liquid Crystal-Polymer Composite Fibers Produced by Electrospinning : 전기방사를 이용한 다중코어 액정-고분자 섬유 제작

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dc.contributor.advisor김창순-
dc.contributor.author계유미-
dc.date.accessioned2017-07-19T10:56:01Z-
dc.date.available2017-07-19T10:56:01Z-
dc.date.issued2015-08-
dc.identifier.other000000067092-
dc.identifier.urihttps://hdl.handle.net/10371/133192-
dc.description학위논문 (석사)-- 서울대학교 융합과학기술대학원 : 융합과학부, 2015. 8. 김창순.-
dc.description.abstractElectrostatic spinning, also known as electrospinning, is a technology which can produce long thin polymer fibers with diameter on the micro- or even nanoscales. In coaxial elecrospinning an additional capillary is introduced into the spinneret, allowing the inclusion of non-spinnable materials in the core of the fiber. As a result, the fiber may obtain new functionality provided by the core material. For instance, a low molar mass liquid crystal cannot be spun into fibers on its own, but it can be injected into a regular polymer fiber via coaxial elecrospinning. Such a liquid crystal-functionalized fiber acquires properties characteristic of liquid crystals, such as birefringence or selective reflection. The liquid crystal core can undergo phase transitions, allowing dynamic tuning of the properties and opening for applications in e.g. organic vapor detection.
In this research project, we grant more than one function to a single fiber by introducing two liquid crystals via dual-channel coaxial spinning. In our experiments, we use a glass capillary with theta-shaped cross section as spinneret as this provides a convenient way of introducing two separate capillaries for the two core materials. Stable dual core fibers could be produced provided that experimental factors such as flow rate, spinneret-collector distance, voltage, humidity and the characteristic of the collector are all optimized. We found that the stability of the dual-core structure as well as the shape of fiber strongly depends on whether the collector substrate is hydrophobic or hydrophilic. Samples were characterized by polarizing optical microscopy (POM) and scanning electron microscopy (SEM). The birefringence of the liquid crystal gives a unique color between crossed polarizers and it marks the inner channel structure of fiber. By heating we could determine whether or not the two core materials were well separated or if mixing had occurred. In case of well separated channels each core clears (transitions into an isotropic liquid) at a specific temperature which is different for the two cores. In contrast, if the two liquid crystals have mixed inside the fiber, then both cores become isotropic at one and the same temperature, which is intermediate between the clearing points of the individual materials. The cross section of fibers was monitored in detail through SEM.
In conclusion, we produced multichannel fibers functionalized with two different liquid crystals through coaxial elecrospinning. The characteristic of the liquid crystals revealed the inner channel system of fiber as well as its stability. This result shows that it is possible to produce multifunctional fibers via multi-channel coaxial electrospinning, but mixing of the different core materials is a critical problem which can be difficult to avoid.
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dc.description.tableofcontentsContents
Abstract ⅰ
Contents ⅳ
List of Figures and Tables ·ⅶ

1.Motivation and Goal 1

2. Background 3
2.1 Liquid Crystals 3
2.1.1 Nematics 5
2.1.2 Cholesterics 7
2.1.3 Alignment and Textures 9
2.2 Electrospinning 11
2.2.1 Fundamental Principle 12
2.2.2 Coaxial Electrospinning 13
2.2.3 Multiple-Core Coaxial 15
2.2.4 Importance of Wettability of Collection Substrate 16

3. Experiment 17
3.1 Materials 17
3.1.1 Polymers and Solvents 17
3.1.2 Liquid Crystals 19
3.1.3 Substrate Coating 20
3.2 Electrospinning Set-up 20
3.2.1 Atmosphere Control, Flow Control and Eclectic Field Application 20
3.2.2 Spinneret Design 23
3.2.3 Calculating Flow Rates 26
3.2.4 Monitoring of Taylor Cone 28
3.2.5 Polarizing Microscopy 29
3.2.6 Scanning Electron Microscopy 29
3.2.7 Electrospinning Conditions 30

4. Results and Discussion 31
4.1 Stable Spinning with Dual Core 31
4.1.1 Monitoring of Tylor Cone and the onset of Spinning 31
4.1.2 Counteracting Fiber Collapse after Collection in Target Substrate 33
4.2 Two Cholesteric Liquid Crystals Encapsulated in the Same Fiber 36
4.3 The Effect of Polymer Solution Concentration on the Inner Structure of the Fiber 39
4.4 Dual Core Fiber with Two Different Encapsulated Namatic Liquid Crystals 42

5. Conclusion 51

6. Reference 53
초록(국문) 55
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dc.formatapplication/pdf-
dc.format.extent2924667 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 융합과학기술대학원-
dc.subjectLiquid crystal-
dc.subjectElectrospinning-
dc.subjectFunctional fiber-
dc.subject.ddc620-
dc.titleMulti-Core Liquid Crystal-Polymer Composite Fibers Produced by Electrospinning-
dc.title.alternative전기방사를 이용한 다중코어 액정-고분자 섬유 제작-
dc.typeThesis-
dc.description.degreeMaster-
dc.citation.pagesⅶ, 56-
dc.contributor.affiliation융합과학기술대학원 융합과학부-
dc.date.awarded2015-08-
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