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Polymer-Nanocomposite Based Pressure Sensors and Energy Harvesting Devices for Wearable Applications : 웨어러블 소자 응용을 위한 고분자 나노복합체 기반 압력센서와 에너지하베스팅소자 연구

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dc.contributor.advisor이신두-
dc.contributor.author이보연-
dc.date.accessioned2018-05-28T16:23:43Z-
dc.date.available2018-05-28T16:23:43Z-
dc.date.issued2018-02-
dc.identifier.other000000150667-
dc.identifier.urihttps://hdl.handle.net/10371/140694-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 공과대학 전기·컴퓨터공학부, 2018. 2. 이신두.-
dc.description.abstractRecently, wearable devices have been highlighted with the development of portable electronic devices and internet of things technologies. Unlike typical electronics, wearable devices need to form conformal and intimate contact with human and should be comfortable to wear or carry. Therefore, these devices must be thin, lightweight and flexible or stretchable. Furthermore, for the true commercialization of wearable electronics, it is essential to implement sensing technologies that enable friendly interaction with the user and develop a new power supply that can solve the problem of the use time and the volume from the existing battery. This thesis primarily aims to demonstrate the pressure sensors and energy harvesting devices suitable for advanced wearable electronics. It consists of two major categories, one of which is a flexible pressure sensor with high sensitivity, and other is a highly efficient, transparent and flexible energy harvesting device.
First, pressure sensors that can measure the strength of the contact have attracted much attention due to their great potential applications from touch panel to health monitoring systems. Especially, the sensitivity of pressure sensors is one of the most important performance factors for better emulating human skin and more precisely capturing human motions. However, existing researches have limitation of the low sensitivity or the complex and costly fabrication process. In this thesis, a low-cost flexible pressure sensor based on the porous elastomer film contributing to the high sensitivity is developed. The elastomer film embedding uniformly dispersed micro-pores is found to have the low elastic modulus and the high deformability. A pressure sensor based on a porous elastomer film exhibits the high sensitivity in the low pressure region and the fast response.
Second, energy harvesting systems have emerged as a prominent research area and continue to grow at rapid pace due to the capability of replacing or supplementing a battery. Among them, triboelectric nanogenerators (TENGs) converting mechanical energy sources from surroundings into electricity have been extensively investigated due to the numerous advantages such as the cost-effectiveness, the fabrication simplicity, the robustness, the small volume, and the high efficiency. However, in the conventional TENGs, it was difficult to implement a flexible device because of metal layers. Although the researches replacing metals to flexible electrodes have been proposed, they have the limitation of a low output power. In this thesis, the research on the performance improvement of a transparent and flexible TENG through the conducting polymer and silver nanowires composite layer is described. A conducting polymer layer with high electronegativity contributes to the improvement of output power of TENG. And its characteristics of high transparency and flexibility will make it suitable for advanced wearable applications. Furthermore, the increase of the conductivity and the surface roughness through the introduction of silver nanowires is found to further improve the output performance of TENG. The proposed TENG exhibits the highest output performance among the conventional transparent and flexible TENGs.
In summary, this thesis focuses on the performance improvement of pressure sensors and TENGs, which are core technologies of advanced wearable applications, through the utilization of polymer-nanocomposites such as the porous elastomer film and the nano-structured conducting polymer. The proposed approaches will provide a viable and effective framework for developing advanced wearable applications such as self-powered pressure sensor with human-friendly interactions.
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dc.description.tableofcontentsChapter 1 Introduction 1
1.1 Wearable Electronics 1
1.2 Mechanical Sensors (Pressure Sensors) 4
1.3 Energy Harvesting Devices 7
1.4 Outline of Thesis 9
Chapter 2 Research Background 11
2.1 Functional Polymers 11
2.1.1 Conducting polymers 12
2.1.2 UV-curable polymers 15
2.1.3 Fluoropolymers 16
2.1.4 Biocompatible elastomers 17
2.2 Capacitive Pressure Sensor 19
2.2.1 Key parameters 19
2.2.2 Improving sensitivity of pressure sensors 21
2.3 Triboelectric Nanogenerator 26
2.3.1 Basic principle 26
2.3.2 Fundamental theory 28
Chapter 3 Highly Flexible Pressure Sensor 32
3.1 Introduction 32
3.2 Experimental Details 35
3.2.1 Fabrication of porous elastomer films 35
3.2.2 Fabrication of pressure sensors 37
3.2.3 Measurements of porous PDMS films and pressure sensors 38
3.3 Results and Discussion 39
3.3.1 Characteristics of porous PDMS films 39
3.3.2 Performance of single cell-type of pressure sensor 44
3.2.3 Performance of flexible array of pressure sensors 52
3.4 Summary 55
Chapter 4 Highly Efficient, Flexible, and Transparent Triboelectric Nanogenerator 56
4.1 Introduction 56
4.2 Experimental Details 61
4.2.1 Materials and sample preparation 61
4.2.2 Measurement and characterization 62
4.3 Triboelectric Property of PEDOT:PSS 64
4.4 Effect of AgNWs on Output of TENG 67
4.4.1 Surface roughness 67
4.4.2 Sheet resistance 69
4.5 Characteristics of PEDOT:PSS/AgNW Film 70
4.6 Output Performance of FT-TENGs 72
4.7 Practical Application of FT-TENGs 75
4.8 Summary 79
Chapter 5 Concluding Remark 80
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dc.formatapplication/pdf-
dc.format.extent3058593 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectWearable electronics-
dc.subjectPolymer-nanocomposites-
dc.subjectElastomer-
dc.subjectFlexible sensors-
dc.subjectCapacitive pressure sensors-
dc.subjectTriboelectric nanogenerators-
dc.subject.ddc621.3-
dc.titlePolymer-Nanocomposite Based Pressure Sensors and Energy Harvesting Devices for Wearable Applications-
dc.title.alternative웨어러블 소자 응용을 위한 고분자 나노복합체 기반 압력센서와 에너지하베스팅소자 연구-
dc.typeThesis-
dc.contributor.AlternativeAuthorBo-Yeon Lee-
dc.description.degreeDoctor-
dc.contributor.affiliation공과대학 전기·컴퓨터공학부-
dc.date.awarded2018-02-
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