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Fabrication of Electrode by Electrodeposition of Non-precious Catalyst and Their Applications to Solar-fuel Production : 전기 도금을 이용한 비귀금속 기반의 전극 제작과 태양 연료 생산에의 응용

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dc.contributor.advisor정택동-
dc.contributor.author임성열-
dc.date.accessioned2017-07-14T05:58:01Z-
dc.date.available2017-07-14T05:58:01Z-
dc.date.issued2016-08-
dc.identifier.other000000136590-
dc.identifier.urihttps://hdl.handle.net/10371/125321-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 화학부 전기분석화학전공, 2016. 8. 정택동.-
dc.description.abstractThe consumption of fossil fuels has adversely affected the environment, thereby resulting in a rapid increase in the global demand for investigating alternative sources of clean energy. One of the promising approaches for solving this issue is to convert solar energy into storable chemical fuels via photoelectrochemical reactions. Photoelectrochemical cell (PEC) is generally composed of several components, such as photoelectrodes, membrane separators, and catalysts-
dc.description.abstractthe development of efficient, economic, and robust catalysts is of great significance. Several studies on electrocatalysts have focused on the discovery of new electrocatalytic materials. Although active research for their commercialization is currently underway, development of electrocatalysts for commercialized solar-fuel production system still remains a challenge, attributed to the gap between performance and cost. Stepping back from the issues related to new material, this dissertation describes two examples of designing electrocatalysts using well-known materials by solution-processing methods, which are representative of low cost and scalability.

First, a light-guided electrodeposition technique was developed, which involves a method of directly patterning a catalyst on amorphous Si (a-Si) by exploiting its photoconductive nature. A NiMo pattern, a well-known non-noble catalyst for hydrogen (H2) evolution, was electrodeposited under the patterned illumination generated using a digital micromirror display (DMD) module. This process was completed in a single step without the use of any mask. Such patterned NiMo/SiOx/a-Si photoelectrodes with sufficient catalyst loading exhibited a bare surface, which allows for light transmission, resulting in the intrinsic current density at 0 (V vs. RHE) and photovoltage of a-Si. Moreover, long-distance lateral electron transport between the adjacent NiMo catalyst patterns was observed.

Second, a biomimetic system for the PEC conversion of carbon dioxide (CO2) to formate was developed, which represents one of the promising media H2 storage in the future. The cathode at which the reduction of CO2 occurs was prepared by the single-step electropolymerization of dopamine in the presence of formate dehydrogenase (FDH) as the biocatalyst, nicotinamide adenine dinucleotide (NADH) as the electron mediator between the underlying electrode and the reaction center in FDH. The cathode thus prepared was connected to cobalt phosphate (CoPi)/bismuth vanadate (BiVO4), which oxidizes water for producing oxygen (O2) as the counter reaction to CO2 reduction. Owing to the powerful catalytic activity of FDH, PDA serving as the electronic wire, and, the CoPi/BiVO4 photoanode supplying sufficient photovoltage, the self-biased, prolonged conversion of CO2 to foramte at zero voltage under simulated AM 1.5 illumination was possible.

Keywords: Photoelectrochemical cells, Catalyst, Light-guided electrodeposition, Hydrogen evolution, Carbon dioxide, Polydopamine, Electropolymerization

Student number: 2009-22918
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dc.description.tableofcontents1. Introduction 1
1.1 Background and Overview 1
1.2 References 8

2. Light-Guided Electrodeposition of Non-noble Catalyst Patterns for Photoelectrochemical Hydrogen Evolution 15
2.1 Introduction 15
2.2 Experimental 19
2.2.1. Materials and reagents 19
2.2.2. Preparation of a-Si photocathodes 19
2.2.3. Light-guided electrodeposition 20
2.2.4. PEC measurements 21
2.2.5. Calculation of ABPE 23
2.2.6. Calculation of IPCE 24
2.3 Results and Discussion 25
2.3.1. Demonstration of light-guided electrodeposition 25
2.3.2. Application of light-guided electrodeposition to the non-noble HER catalyst, NiMo 36
2.3.3. Long, lateral electron transport in a-Si 40
2.3.4. Effect of patterned NiMo on a-Si photocathode on PEC HER 60
2.4 Conclusion 75
2.5 References 77

3. Light-Driven Highly Selective Conversion of CO2 to Formate by Electrosynthesized Enzyme/Cofactor Thin Film Electrode 83
3.1 Introduction 83
3.2 Experimental 88
3.2.1. Materials and reagents 88
3.2.2. Electrochemical preparation of electrodes 88
3.2.3. Regeneration of NADH 92
3.2.4. Isotope-tracer experiments 92
3.2.5. Determination of formate concentration 92
3.2.6. Mott-Schottky analysis to calculate the flatband potential of BiVO4 93
3.2.7. Calculation of light conversion efficiency to chemical energy 93
3.2.8. Instrumentation 94
3.3 Results and Discussion 96
3.3.1. Fabrication of polydopamine-based enzyme/cofactor thin film-covered biocathode 96
3.3.2. Performance of biocathode for CO2 reduction 103
3.3.3. Performance CoPi/BiVO4 photoanode for water oxidation 117
3.3.4. Operation of light-driven CO2 reduction system 125
3.4 Conclusions 132
3.5 References 134

4. Summary and Perspectives 138

Abstract (in Korean) 142
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dc.formatapplication/pdf-
dc.format.extent4203064 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectElectrochemistry-
dc.subject.ddc540-
dc.titleFabrication of Electrode by Electrodeposition of Non-precious Catalyst and Their Applications to Solar-fuel Production-
dc.title.alternative전기 도금을 이용한 비귀금속 기반의 전극 제작과 태양 연료 생산에의 응용-
dc.typeThesis-
dc.contributor.AlternativeAuthorSung Yul Lim-
dc.description.degreeDoctor-
dc.citation.pages144-
dc.contributor.affiliation자연과학대학 화학부-
dc.date.awarded2016-08-
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