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Amorphous Phyllosilicate for Efficient Oxygen Evolution Reaction Catalyst : 수소 생산용 비정질 층상규산염을 이용한 산소 발생 촉매에 관한 연구

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dc.contributor.advisor강기석-
dc.contributor.author김주성-
dc.date.accessioned2018-05-28T16:18:15Z-
dc.date.available2018-05-28T16:18:15Z-
dc.date.issued2018-02-
dc.identifier.other000000149429-
dc.identifier.urihttps://hdl.handle.net/10371/140650-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 공과대학 재료공학부, 2018. 2. 강기석.-
dc.description.abstractHydrogen is one of the most promising renewable source for next efficient energy generation because of its sustainability and higher energy density than conventional energy sources. Hydrogen can be produced from various method, however, splitting water is considered as the best solution to produce hydrogen owing to its advantages such as clean, environmentally-friendly and sustainability. In order to meet the industrial demand, integrating efficient water splitting system is crucial. Among the components of the water splitting system, the development of low-cost and efficient oxygen evolution reaction (OER) catalyst is pivotal because OER is the bottleneck of the overall water splitting reaction due to the sluggish multielectron reaction and O-O bond formation compared to hydrogen evolution reaction (HER). Many researches have been conducted to develop novel efficient OER catalysts and to understand the mechanism of OER.
In the early stage of the research about OER catalysts, precious metal based electrocatalyst such as Ru, Ir and their oxide material has been widely studied owing to their superior performance. However, their scarcity has led to high prices, and this has been the biggest obstacle to commercialization. As a solution to this problem, 3d transition metal (Mn, Fe, Co and Ni) based catalysts have been proposed. Many reported transition metal-based catalysts show excellent properties and stability in neutral and alkaline electrolytes. In addition, many studies have been carried out to analyze the mechanism and the determinants of performance, but it is still controversial in many areas, and further research is needed.
In this thesis, we have designed an OER catalyst with excellent performance by using the mineral which exists in nature called phyllosilicate and analyzed the effect of the elements in the crystal structure on OER. We believe that phyllosilicate-based catalysts can pave a new unexplored avenue for the design of high performance catalyst.
In chapter 2, we introduced an amorphous cobalt phyllosilicate (ACP) with layered crystalline motif as a new efficient OER catalyst. A structural investigation using X-ray absorption spectroscopy revealed that the amorphous structure contains layered motifs similar to the structure of CoOOH, which is demonstrated to be responsible for the OER catalysis based on density functional theory calculations. However, the calculations also revealed that the local environment of the active site in the layered crystalline motif in the ACP is significantly modulated by the silicate, leading to a substantial reduction of η of the OER compared with that of CoOOH.
Chapter 3 presented the role of iron and cobalt in the OER through amorphous cobalt-iron binary phyllosilicate (ACFP). It was confirmed that prepared ACFP had a solid solution form in which cobalt and iron were uniformly mixed. As iron was added, overpotential tended to decrease until Fe content reached 40% and the Tafel slope decreased compared to the Co phase in all regions. The calculations revealed that inactive sites for oxygen evolution in the pure cobalt phyllosilicate phase could become active by lowering its overpotential of rate determining step.
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dc.description.tableofcontentsChapter 1. Introduction 1
1.1 Hydrogen energy as a future energy resources 1
1.2 Hydrogen production: Water electrolysis 2
1.3 Overall water splitting reaction 5
1.4 Oxygen evolution reaction 7
1.5 Literature review on OER catalyst 10
1.6 Purpose of this thesis 12
Chapter 2. Experimental details 14
2.1 Materials preparation 14
2.1.1 Synthesis of ACP and annealed ACP 14
2.1.2 Synthesis of ACFP and annealed ACFP series 14
2.1.3 Preparation of CoOOH, Co3O4, CoO, and LiCoO2 15
2.1.4 Synthesis of CFH series 16
2.1.5 Electrode preparation 16
2.2 Characterization 17
2.2.1 Material characterization 17
2.2.2 Electrochemical characterization 18
2.3 Computational details 20
2.3.1 Calculation details 20
2.3.2 Thermodynamics of OER 21
Chapter 3 Amorphous Cobalt Phyllosilicate with Layered Crystalline Motifs as Water Oxidation Catalyst 24
3.1 Introduction 24
3.2 Results and Discussions 27
3.2.1 Phase identification of ACP 27
3.2.2 Electrochemical properties of ACP 46
3.2.3 Oxidation state and local structure of ACP 57
3.2.4 Slab modeling for DFT calculation 66
3.2.5 OER thermodynamics 76
3.3 Conclusion 83
Chapter 4 Activation of Reaction Sites in Amorphous Cobalt Iron Phyllosilicate for the Efficient Oxygen Evolution Reaction 84
4.1 Introduction 84
4.2 Results and Discussions 88
4.2.1. Phase identification of ACFP 88
4.2.2. XPS analysis for solid solution forming 100
4.2.3. Electrochemical properties of ACFP 104
4.2.4. The oxidation state analysis: EPR analysis 111
4.2.5. Determination of reaction sites in ACFP 113
4.2.6. Tracking bridge site oxygen evolution 119
4.3. Conclusion 121
Chapter 5. Concluding remarks 122
Chapter 6. Abstract in Korean 126
Chapter 7. Curriculum Vitae 128
Chapter 8. References 134
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dc.formatapplication/pdf-
dc.format.extent4736048 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectPhyllosilicate-
dc.subjectWater Electrolysis-
dc.subjectOxygen Evolution Reaction-
dc.subjectLayered (oxy)hydroxides-
dc.subjectTransition metal-
dc.subjectElectrocatalyst-
dc.subject.ddc620.11-
dc.titleAmorphous Phyllosilicate for Efficient Oxygen Evolution Reaction Catalyst-
dc.title.alternative수소 생산용 비정질 층상규산염을 이용한 산소 발생 촉매에 관한 연구-
dc.typeThesis-
dc.contributor.AlternativeAuthorJu Seong Kim-
dc.description.degreeDoctor-
dc.contributor.affiliation공과대학 재료공학부-
dc.date.awarded2018-02-
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