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Fabrication of Fluorescent Hybrid Nanoparticles and Their Specific Ion and Molecule Detection Applications

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dc.contributor.advisor장정식-
dc.contributor.author이인규-
dc.date.accessioned2017-07-13T08:44:52Z-
dc.date.available2017-07-13T08:44:52Z-
dc.date.issued2016-08-
dc.identifier.other000000136636-
dc.identifier.urihttps://hdl.handle.net/10371/119806-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 화학생물공학부, 2016. 8. 장정식.-
dc.description.abstractVarious nanoprobe systems are being developed to explore their potential in biomedical fields, with many applications to the diagnosis or monitoring of various diseases. There are many advantages of nano-size probes for the application in biomedical field. First, the scale of cell and tissue structures is meaningful. Since most nanoprobes are about 10—500nm which are generally over 100 fold smaller than cells. Second, the building blocks of nanoprobes like proteins, carbohydrates, nucleic acids, synthetic polymers or small inorganic particles are generally smaller than about several scores of nanometers. Third, nanoprobes have potential for wide application because they can easily contain useful molecules such as imaging agents, active targeting moieties, or drugs by simple loading or conjugation. Consequently, it is still challenging to produce fluorescent hybrid nanoparticles for detecting and imaging target analytes in living systems.
This dissertation describes the three different ways in the synthetic methodology of fluorescent hybrid nanoparticles. First, PAN nanomaterials as novel bioimaging agents without additional fluorophores were developed by ultrasound induced emulsion polymerization, and it could be applied for the fluorescence sensors of copper ion and cell imaging. Second, a dual emission Au-PAN NPs sensor was prepared for sensitive detection of mercury ions in aqueous solution. The Au-PAN nanoparticles showed significant intensity change by addtion of mercury ions and higher binding affinity toward mercury ion than other metal ions. Lastly, a novel fluorescent Au-GQDs nanoparticle was synthesized for use as a probe that can selectively detect Cys in living cells. The dual emission fluorescence peak ratio changed when the Au-GQDs nanoparticles reacted with Cys. This fluorescence behavior was highly specific for Cys. Most importantly, these novel approaches can be used as an alternative tool for specific ions and molecule detection in environmental condition, and may offer an opportunity for the further investigation of industrial applications, and might be expanded to allow the fluorescence sensor applications of hybrid nanoparticles in a wide range of areas.
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dc.description.tableofcontents1. INTRODUCTION 1
1.1. Background 1
1.1.1. Nanoprobe 1
1.1.2. Materials of Nanoprobe 4
1.1.3. Fluorescent Nanoprobe for Bioimaging applications 20
1.2. Objectives and Outlines 28
1.2.1. Objectives 28
1.2.2. Outlines 28

2. EXPERIMENTAL DETAILS 32
2.1. Amidine/Schiff Base Dual-Modified PAN Nanoparticles and Their Application 32
2.1.1. Fabrication of Amidine/Schiff Base Dual-Modified PAN Nanoparticles 32
2.1.2. Application for Intracellular Copper Ion Detection 35
2.2. Au-decorated PAN Nanoparticles with Dual-Emission and Their Application 37
2.2.1. Fabrication of Au-decorated PAN Nanoparticles with Dual-Emission 37
2.2.2. Application for Mercury Ion Detection 40
2.3. Au-decorated Graphene Quantum Dots with Dual-Emission and Their Application 41
2.3.1. Fabrication of Au-decorated Graphene Quantum Dots with Dual-Emission 41
2.3.2. Application for Intracellular Cysteine Detection 44

3. RESULTS AND DISCUSSION 46
3.1. Amidine/Schiff Base Dual-Modified PAN Nanoparticles and Their Application 46
3.1.1. Fabrication of Amidine/Schiff Base Dual-Modified PAN Nanoparticles 46
3.1.2. Application for Intracellular Copper Ion Detection 63
3.2. Au-decorated PAN Nanoparticles with Dual-Emission and Their Application 68
3.2.1. Fabrication of Au-decorated PAN Nanoparticles with Dual-Emission 68
3.2.2. Application for Mercury Ion Detection 77
3.3. Au-decorated Graphene Quantum Dots with Dual-Emission and Their Application 84
3.3.1. Fabrication of Au-decorated Graphene Quantum Dots with Dual-Emission 84
3.3.2. Application for Intracellular Cysteine Detection 97

4. CONCLUSIONS 101

REFERENCES 104

국문 초록 110
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dc.formatapplication/pdf-
dc.format.extent6195107 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectFluorescent hybrid nanoparticle-
dc.subjectSurface modification-
dc.subjectGold nanocluster-
dc.subjectGraphene quantum dots-
dc.subjectCell imaging-
dc.subjectFluorescence detection-
dc.subject.ddc660-
dc.titleFabrication of Fluorescent Hybrid Nanoparticles and Their Specific Ion and Molecule Detection Applications-
dc.typeThesis-
dc.description.degreeDoctor-
dc.citation.pages112-
dc.contributor.affiliation공과대학 화학생물공학부-
dc.date.awarded2016-08-
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