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Specific Designed Electrochemical Microprobes for Neural Therapy and Spectroscopic Analysis : 신경치료 및 분광학적 분석을 위해 특별히 고안된 전기화학 마이크로 프로브

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dc.contributor.advisor정택동-
dc.contributor.author김범진-
dc.date.accessioned2017-07-14T05:57:38Z-
dc.date.available2017-07-14T05:57:38Z-
dc.date.issued2016-08-
dc.identifier.other000000136121-
dc.identifier.urihttps://hdl.handle.net/10371/125315-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 화학부 전기화학전공, 2016. 8. 정택동.-
dc.description.abstractElectrochemistry is an effective analytical method for biological and surface analysis because of monitoring substances without destruction. For this, various-sized probes are used and micro-sized probe is especially useful for practical purposes due to producing optimal spatial resolution.
In Part 1, we introduce a outline of analytical methods and explain why micro-sized electrochemical probe is needed for biological and surface analysis.
In Part 2, Nanoporous Pt with extremely small (1–2 nm) and uniform nanopores, L2-ePt, was electrochemically investigated in embryo brain. For comparison study under precise control of electrochemical potential, we constituted an electrochemical cell beneath the embryo surface by introducing a flat and a nanoporous Pt twisted wires around which a Ag/AgCl wound. L2-ePt and flat Pt in the brain were compared with each other by conventional voltammetry and electrochemical impedance spectroscopy at the dc bias, which was carefully selected to minimize faradaic interference. The electrochemical behavior at L2-ePt implanted in embryo brain is immune to severe passivation and closer to an ideal capacitor than flat Pt. Lower electrode impedance of L2-ePt leads to less potential drop at the interface between the electrode and the extracellular solution, protecting the implanted system from unwanted faradaic reactions. Various aspects including the low electrode impedance and electrochemical stability of L2-ePt in the embryo brain suggest L2-ePt as a promising electrode material for effectively stimulating distant neuronal cells and recording local field potential signals.
In Part 3, we suggest a new strategy for probe fabrication to simultaneously acquire electrochemical signals from ultramicroelectrode (UME) and spectroscopic information from surface-enhanced Raman scattering (SERS). The proposed Electrochemical-SERS (EC-SERS) probe was prepared by elaborately tuning the SERS-active gold microshell (μ-shell) to maximize Raman scattering, mechanically fixing it at the end of micropipette, and electrically connecting with the ruthenium inner layer through electroless deposition process. This μ-shell based SERS-active UME is barely smaller than the laser focal volume (ca. 2 μm in diameter) but still visible through optical microscope. It proposes novel opportunities to scanning electrochemical microscope (SECM) that enables gap-mode free in situ EC-SERS analysis in electrochemical and biological systems.
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dc.description.tableofcontentsPART 1. General Introduction 15
1. Introduction 16
2. References 20

PART 2. Specific Designed EC-microprobe for Neural Recording and Stimulation 23
1. Introduction 24
2. Experimental Methods 30
2.1. Reagents 30
2.2. Electrode Preparation and Electrodeposition of L2-ePt 30
2.3. Brain of Embryo as an Electrochemical Cell 34
2.4. Eelctrochemical Measurements 35
2.5. Fitting Procedure of Electrochemical Impedance Spectroscopy 36
2.6. Interpretation of the Bode plots 37
3. Results and Discussion 38
3.1. Voltammogram in the Cerebrum 38
3.2. Change of Electrode Impedance in the Brain 43
3.3. Comparison of the Capacitances and Influence of the Tissue 47
4. Conclusions 56
5. References 58

PART 3. Specific Designed EC-microprobe for EC reaction 63
1. Introduction 64
2. Experimental Methods 66
2.1. Reagents 66
2.2. Preparation of the in-situ EC-SERS probe 66
2.2.1. Fabrication of a SERS-active Gold Microshell 66
2.2.2. Preparation of a Ru Coated Micropipette 69
2.2.3. Permanently Sticking a Gold Microshell to the End of the Ru Coated Micropipette 70
2.3. Electrochemical and Optical Measurements 75
2.4. Evaluation of the Functions of the in-situ EC-SERS probe 75
2.5. Electrochemical Surface Area Calculation of the EC-SERS probe 76
2.6. In situ Electrochemical SERS Monitoring of NBT reduction Py Adsorbed on the EC-SERS probe 77
3. Results and Discussion 79
3.1. Preparation of Electrochemical SERS Monitoring System and the EC-SERS probe 79
3.2. Evaluation of the Functions of the in-situ EC-SERS probe 84
3.3. In situ Electrochemical SERS Monitoring of NBT reduction Py Adsorbed on the EC-SERS probe 86
3.3.1. In situ electrochemical SERS monitoring of NBT reduction 86
3.3.2. In situ electrochemical SERS monitoring of Py adsorbed 88
4. Conclusions 92
5. References 93

List of Publications 97

Abstract in Korean 99
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dc.formatapplication/pdf-
dc.format.extent3762890 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectNanoporous electrode-
dc.subjectneural recording and stimulation-
dc.subjectMicroporobe-
dc.subjectElectrochemistry-
dc.subjectGold microshell-
dc.subjectRaman spectroscopy-
dc.subjectUltramicroelectrode-
dc.subject.ddc540-
dc.titleSpecific Designed Electrochemical Microprobes for Neural Therapy and Spectroscopic Analysis-
dc.title.alternative신경치료 및 분광학적 분석을 위해 특별히 고안된 전기화학 마이크로 프로브-
dc.typeThesis-
dc.contributor.AlternativeAuthorBeom Jin Kim-
dc.description.degreeDoctor-
dc.citation.pages100-
dc.contributor.affiliation자연과학대학 화학부-
dc.date.awarded2016-08-
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