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생체 촉매를 모방한 탄소기반의 광전기화학 물분해 촉매 연구 : Enzyme-Mimetic Carbon-based Catalysts for Photoelectrochemical Water Splitting

DC Field Value Language
dc.contributor.advisor남기태-
dc.contributor.author심욱-
dc.date.accessioned2017-07-13T05:50:33Z-
dc.date.available2017-07-13T05:50:33Z-
dc.date.issued2016-02-
dc.identifier.other000000133059-
dc.identifier.urihttps://hdl.handle.net/10371/118064-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 재료공학부, 2016. 2. 남기태.-
dc.description.abstractThe development of efficient catalysts represents one of the most important and challenging issues for the electrochemical hydrogen production. Learning from the biomolecular catalysts such as an enzyme or photosystem in nature provides clues to resolve the related kinetic issues. For example, hydrogenase, which occurs in bacteria, archaea, and some eukarya, catalyzes a proton into a hydrogen evolution reaction (HER) with high activity very near the thermodynamic efficiency limit. The reaction takes place at a specialized metal active center. Functional protein assemblies surrounding a metal active site act as ligands for the metals, pockets for the catalytic reaction, and pathways for reactants and products. Inspired by biomolecular system, we have designed enzyme-mimetic carbon-based catalysts for HER and investigated the effect of each component with a systematic approach.
As the simplest model carbon-based platform, 2D monolayer graphene was chosen as a HER catalyst. Graphene possesses excellent transmittance and superior intrinsic carrier mobility. For the first time, we have investigated new possibilities of monolayer graphene as the efficient HER catalyst. The catalytic activity can be further enhanced by generating more active sites. Treatment with N2 plasma also induces N doping and abundant defects. The catalyst exhibits a lower Tafel slope (45 mV/decade) and a higher exchange current density (7.1×10-5 mA/cm2) than those of other previously reported carbon-based HER catalysts, indicating performance comparable to that of Pt catalyst. Based on the electrochemical analysis, the active sites of the N-doped graphene have been identified and quantified.
As an intermediate stage of extension from the single 2D platform to a complicate 3D structure, we have transferred graphene layer-by-layer as a well-defined model of the pseudo-3D system and investigated the layer dependence of catalytic activity. Comprehensive electrochemical analysis shows that there is an optimized structure of stacked graphene for the best catalytic activity and the highest charge transfer rate. Based on the understanding of the optimized carbon platform, metal active sites have been incorporated with high controllability and tunability. Moreover, another type of the biomimetic carbon-based nanosheets is addressed as a new HER catalyst.
Our synthetic bioinspired HER catalysts are also highly transparent and are applicable to the co-catalyst for the Si photoelectrochemical (PEC) cell. The results indicate the applied bias photon-to-current efficiency of 2.29%, which is higher than that of any other carbon-based PEC catalysts reported to date. Controlling surface structure of the light-absorbing photoelectrode and the deposition of the co-catalyst represent a significant step toward enhancing the hydrogen production.
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dc.description.tableofcontentsChapter 1 Introduction 1
1.1 Demand for hydrogen energy as sustainable energy source 1
1.2 Demand for water splitting reaction catalyst 4
1.3 Lessons from natural enzyme 5
1.4 Objective of the thesis 6
1.5 Bibliography 12

Chapter 2 Theoretical background of water splitting reaction 13
2.1 Introduction 13
2.2 Hydrogen evolution reaction (HER) 14
2.3 Oxygen evolution reaction (OER) 37
2.4 Photoelectrochemical water splitting 62
2.5 Conclusion 81
2.6 Bibliography 82

Chapter 3 Experimental and analysis 98
3.1 Synthesis of catalysts 98
3.2 Electrode preparation 99
3.3 Analysis methods of synthesized catalyst and electrode 100
3.4 Characterization method for catalytic activity 101


Part I: Model study of carbon platform: From 2D monolayer graphene to pseudo-3D system of multi-layer graphene and graphene quantum sheets 105
Chapter 4 The simplest model: monolayer graphene 106
4.1 Introduction 106
4.2 Results and Discussion 108
4.3 Conclusion 119
4.4 Bibliography 135
Chapter 5 Pseudo-3D system of multi-layer graphene: layer dependency of graphene 137
5.1 Introduction 137
5.2 Results and Discussion 141
5.3 Conclusion 156
5.4 Bibliography 165
Chapter 6 Nanostructural dependence of photoelectrode 169
6.1 Introduction 169
6.2 Results and Discussion 172
6.3 Conclusion 186
6.4 Bibliography 198
Chapter 7 Graphene quantum sheets catalyst and structural optimization of catalyst and photoelectrode 202
7.1 Introduction 202
7.2 Results and Discussion 206
7.3 Conclusion 224
7.4 Bibliography 239

Part II: Model study of metal active sites: synthetic bioinspired carbon-based catalyst 244
Chapter 8 Synthetic bioinspired carbon-based catalyst 245
8.1 Introduction 245
8.2 Results and Discussion 246
8.3 Conclusion 260
8.4 Bibliography 261
Chapter 9 Biomimetic iron sulfur/carbon-based catalyst 265
9.1 Introduction 265
9.2 Results and Discussion 267
9.3 Conclusion 276
9.4 Bibliography 283
Chapter 10 Concluding remarks 285

Publication list 290

국문 초록 301
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dc.formatapplication/pdf-
dc.format.extent10232228 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subject광전기화학셀-
dc.subject탄소-
dc.subject촉매-
dc.subject생체모방-
dc.subject물분해-
dc.subject수소발생-
dc.subject.ddc620-
dc.title생체 촉매를 모방한 탄소기반의 광전기화학 물분해 촉매 연구-
dc.title.alternativeEnzyme-Mimetic Carbon-based Catalysts for Photoelectrochemical Water Splitting-
dc.typeThesis-
dc.contributor.AlternativeAuthorSim Uk-
dc.description.degreeDoctor-
dc.citation.pages300-
dc.contributor.affiliation공과대학 재료공학부-
dc.date.awarded2016-02-
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