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Fabrication of Palladium-decorated Polypyrrole and Graphene Electrodes for Sensor Applications

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dc.contributor.advisor장정식-
dc.contributor.author신동훈-
dc.date.accessioned2017-07-13T08:45:47Z-
dc.date.available2017-07-13T08:45:47Z-
dc.date.issued2017-02-
dc.identifier.other000000140682-
dc.identifier.urihttps://hdl.handle.net/10371/119819-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 화학생물공학부, 2017. 2. 장정식.-
dc.description.abstractThere has been tremendous research for the devolopment of novel materials with excellent properties and performances. In particular, composite materials, consist of inorganic and organic component, not only display synergetic effect between inorganic (high performance) and organic (high stability) but also meet the economic and environmental demands. Among them, palladium contained carbon-based composite materials have attracted enormous attention in research and industry fields due to the high hydrogen reactivity and catalytic performance. Although blending technique of inorganic nanomaterials as filler and carbon materials already applied for various part, there is still lack of investigation on the decoration of inorganic materials on the carbon materials.
This dissertation demonstrates that polypyrrole/polyacrylonitrile nanofibers using electrospinning and VDP (vapor deposition polymerization) and graphene thin layer using CVD (chemical vapor deposition) were fabricated as conductive substrates, and then, composite materials based on palladium nanostructure synthesized via electrodeposition process. These synthesized composite materials present improved electric and chemical properties, enabling to be applied for various sensor applications. When introduced to transducer materials for sensor device, it provides the fast response and high stability owing to the synergetic effect. In addition, increasing surface area from controllable palladium nanostructure induces the amplified interaction with target materials and facilitates realization of the high sensitive sensor.
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dc.description.tableofcontents1. Introduction 1
1.1 Background 1
1.1.1 Conducting Polymers 1
1.1.1.1 Polypyrrole 3
1.1.1.2 1D nanomaterials 8
1.1.1.2.1 Electrospinning method 8
1.1.2 CVD graphene 12
1.1.3 Noble metal 15
1.1.4 Composite materials 16
1.1.4.1 Noble metal/Conducting polymer 16
1.1.4.2 Noble metal/CVD graphene 17
1.1.4.3 Electrodeposition method 18
1.1.5 Sensor applications 20
1.1.5.1 Chemical sensor 20
1.1.5.1.1 H2 gas sensor 21
1.1.5.2 Liquid-ion gated FET-type biosensor 22
1.1.5.2.1 H2O2 sensor 22
1.1.5.2.2 Glucose sensor 23
1.2 Objectives and Outlines 26
1.2.1 Objectives 26
1.2.2 Outlines 27
2. Experimental Details 29
2.1 Fabrication of shape-controlled Pd NPs-decorated PPy/PAN NFs electrode for FET-type H2O2 sensor 29
2.1.1 Fabrication of PPy/PAN NFs 29
2.1.2 Fabrication of shape-controlled Pd_PPy/PAN NFs 29
2.1.3 Characterization of shape-controlled Pd_PPy/PAN NFs 30
2.1.4 Electrical measurement of shape-controlled Pd_PPy/PAN NFs electrode 31
2.2 Fabrication of population-controlled flower-like Pd NCs-decorated CVD graphene electrode for ultrasensitive and flexible H2 sensing 32
2.2.1 Fabrication of CVD graphene on the flexible film 32
2.2.2 Fabrication of population-controlled FPNCs_CG 33
2.2.3 Characterization of population-controlled FPNCs_CG 33
2.2.4 Electrical measurement of population-controlled FPNCs_CG electrode 34
2.3 Fabrication of sharpness-controlled Pd nanoflower-decorated CVD graphene electrode for selectivity-improved FET-type glucose sensor 36
2.3.1 Fabrication of CVD graphene 36
2.3.2 Fabrication of sharpness-controlled SPNFG 37
2.3.3 Characterization of sharpness-controlled SPNFG 37
2.3.4 Electrical measurement of sharpness-controlled SPNFG electrode 38
3. Results and Disccusions 39
3.1 Fabrication of shape-controlled Pd NPs-decorated PPy/PAN NFs electrode for FET-type H2O2 sensor 39
3.1.1 Fabrication of shape-controlled Pd_PPy/PAN NFs 39
3.1.2 Characterization of shape-controlled Pd_PPy/PAN NFs 45
3.1.3 Eletrical properties of shape-controlled Pd_PPy/PAN NFs electrode 50
3.1.4 Real-time response of FET-type H2O2 sensor based on shape-controlled Pd_PPy/PAN NFs electrode 52
3.2 Fabrication of population-controlled flower-like Pd NCs-decorated CVD graphene electrode for ultrasensitive and flexible H2 sensing 57
3.2.1 Fabrication of population-controlled FPNCs_CG 57
3.2.2 Characterization of population-controlled FPNCs_CG 67
3.2.3 Eletrical properties of population-controlled FPNCs_CG electrode 71
3.2.4 Real-time response of chemiresistive H2 sensor based on population-controlled FPNCs_CG electrode 74
3.3 Fabrication of the sharpness-controlled Pd nanoflower-decorated CVD graphene electrode for selectivity-improved FET-type glucose sensor 87
3.3.1 Fabrication of sharpness-controlled SPNFG 87
3.3.2 Characterization of sharpness-controlled SPNFG 92
3.3.3 Fabrication of sharpness-controlled SPNFG sensor electrode 95
3.3.4 Eletrical properties of sharpness-controlled SPNFG electrode 97
3.3.5 Real-time response of FET-type glucose sensor based on sharpness-controlled SPNFG electrode 99
3.3.6 Selectivity-improved FET-type glucose sensor 106
4. Conclusion 112
Reference 116
국문초록 126
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dc.formatapplication/pdf-
dc.format.extent3957399 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoko-
dc.publisher서울대학교 대학원-
dc.subjectpalladium-
dc.subjectpolypyrrole-
dc.subjectgraphene-
dc.subjectsensor-
dc.subject.ddc660-
dc.titleFabrication of Palladium-decorated Polypyrrole and Graphene Electrodes for Sensor Applications-
dc.typeThesis-
dc.description.degreeDoctor-
dc.citation.pagesxxii, 126-
dc.contributor.affiliation공과대학 화학생물공학부-
dc.date.awarded2017-02-
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