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Application of orthogonal photolithography to organic materials and flexible electronic devices : 직교 광 식각 기술을 적용한 유기 물질과 유연 전자소자에 대한 연구

DC Field Value Language
dc.contributor.advisor이탁희-
dc.contributor.author장진곤-
dc.date.accessioned2017-07-19T06:12:44Z-
dc.date.available2017-07-19T06:12:44Z-
dc.date.issued2017-02-
dc.identifier.other000000140689-
dc.identifier.urihttp://dcollection.snu.ac.kr:80/jsp/common/DcLoOrgPer.jsp?sItemId=000000140689-
dc.description학위논문(박사)--서울대학교 대학원 :자연과학대학 물리·천문학부,2017. 2. 이탁희.-
dc.description.abstractFluorous materials have been receiving great attention as photolithographic materials to actualize photolithographic micro-scale patterned structure for organic electronic devices due to their material advantages such as orthogonality to most organic materials, non-flammability, and low toxicity. Compared with conventional photolithographic materials which generally cause chemical damage to organic layers, fluorous materials can be used to fabricate micro-scale patterned organic device architecture without damage, and they have been consistently developed as photolithographic solvents and imaging resist materials. Recently, orthogonal photolithography using fluorous photolithographic materials have been applied in the field of organic thin-film transistors, logic circuits, non-volatile memory devices, and light-emitting diodes. From among these, organic memory devices have achieved great attention as a candidate for future flexible data storage media with their simple device structure, low cost, printability, flexibility, and low weight. But there still remain several issues to overcome for organic memory devices to be practical electronic products such as micro-scale resolution, reproducibility, uniformity, switching mechanism, and energy efficiency. Here, resistive switching mechanism is particularly important to link electronic properties to material properties for the memory devices.
In this thesis, we analyzed development of fluorous photolithographic materials and their application to organic electronic devices such as thin-film transistors, logic circuits, and non-volatile memory devices. Also, organic non-volatile resistive memory devices were researched in terms of morphological properties and energy consumption related to switching mechanism. Lastly, aluminum oxide resistive memory devices on highly flexible paper substrate were successfully fabricated using only physical vapor deposition methods and stably characterized in the flat and bent conditions.
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dc.description.tableofcontentsChapter 1. Orthogonal photolithography 1
1.1. Introduction 1
1.2. Photolithographic materials 3
1.3. Applications for organic devices 6
1.3.1. Thin-film transistors and logic circuits 6
1.3.2. Non-volatile resistive memory devices 16
1.4. Conclusions 22
Chapter 2. Organic non-volatile resistive memory devices 24
2.1. Introduction 24
2.2. Effect of morphological structure on memory performances 27
2.3. Energy consumption estimation and switching mechanism 38
2.4. Conclusions 47
Chapter 3. Paper electronics 49
3.1. Introduction 49
3.2. Aluminum oxide resistive memory devices 50
3.3. Conclusions 58
Chapter 4. Summary 60
References 63
Curriculum Vitae 75
국문초록(Abstract in Korean) 82
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dc.format.extentvi, 82-
dc.language.isoeng-
dc.publisher서울대학교 대학원-
dc.subjectOrganic electronic devices, fluorous materials, photolithography, non-volatile memory, flexibility-
dc.subject.ddc523-
dc.titleApplication of orthogonal photolithography to organic materials and flexible electronic devices-
dc.title.alternative직교 광 식각 기술을 적용한 유기 물질과 유연 전자소자에 대한 연구-
dc.typeThesis-
dc.typeDissertation-
dc.contributor.AlternativeAuthorJingon Jang-
dc.contributor.department자연과학대학 물리·천문학부-
dc.description.degreeDoctor-
dc.date.awarded2017-02-
dc.contributor.major응용물리학과-
dc.identifier.holdings000000000030▲000000000031▲000000140689▲-
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