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Effect of Surface Characteristics of Reduced Graphene Oxide on the Performance of Pseudocapacitor

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dc.contributor.advisor박종래-
dc.contributor.author장미세-
dc.date.accessioned2017-07-14T03:10:48Z-
dc.date.available2017-07-14T03:10:48Z-
dc.date.issued2015-02-
dc.identifier.other000000025643-
dc.identifier.urihttps://hdl.handle.net/10371/123342-
dc.description학위논문 (석사)-- 서울대학교 대학원 : 재료공학부, 2015. 2. 박종래.-
dc.description.abstractIt is well known that reduced graphene oxide (rGO) has been intensely researched for applications in supercapacitors and rGO/metal oxide composite have also been spotlighted for its pseudocapacitive effects. Though metal oxides have high specific capacitance and electrochemical stability, they also show poor rate capability and low accessible surface areas. In order to overcome these problems, many fabrication methods of the composite has been suggested, such as, microwave assisted reflux methods by Rao et al., and electrochemical deposition method by Cao et al., which showed high specific capacitance values. However, other than just fabricating a composite and showing that it has a high value as listed above, no research has been done on verifying which kind of rGO plays the ideal role as a substrate for metal oxide composites in terms of rGOs surface characteristics, chemical properties, and preparation methods.
Therefore, it came to our interest, that in order to fabricate rGO/metal oxide supercapacitor with high electrochemical performance, not only do we need to research on the composite fabrication methods, but also need to provide a guideline of how to prepare rGO substrate of different size, and functional groups. In this research, we analyzed the electrochemical characteristics of the different rGO/Co3O4 composites prepared by controlling rGOs surface characteristics and its relationship between the performance of the pseudocapacitor, providing a guideline for the ideal fabrication of rGO/metal oxide composite for psuedocapacitor. This way, further researches using rGO as electrode material for pseudocapacitors can, from now on, take our research into account for improved electrochemical performances.
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dc.description.tableofcontentsContents
Abstract i
Contents iii
List of Tables vi
List of Figures vii
1. Introduction 9
1.1 Introduction to rGO/Co3O4 pseudocapacitor 9
1.1.1 rGO as electrode material for supercapacitor and its EDLC behavior 9
1.1.2 Metal oxide (MO) as electrode material for pseudocapacitor and its pseudocapacitive behavior 11
1.1.3 Important factors for performance of pseudocapacitor 13
1.1.4 State-of-the-art (SOA) of rGO/Co3O4 pseudocapacitors 14
1.1.5 Limitation of the state-of-the-art of rGO/Co3O4 pseudocapacitors 17
1.2 The growth of metal oxide on the oxygen functionalized rGO substrate 18
1.2.1 Interaction of rGO and metal oxides 18
1.2.2 Growth of metal oxides and its interaction with the functional groups of the rGO 19
1.2.3 Controlling the functional groups of rGO through oxidation 20
1.2.4 Graphite precursors 22
1.3 The goal of this research 23
2. Experimental 25
2.1 Preparation of varied surface properties of rGO 25
2.1.1 Materials 25
2.1.2 Oxidation of GO(C) and GO(P) 25
2.1.3 Oxidation of GO(P) at 0h, 4h, 8h, 16h oxidation time 26
2.2 Preparation of rGO/Co3O4 pseudocapacitor 26
2.2.1 Preparation of rGO/Co3O4 composites 26
2.2.2 Preparation of rGO/Co3O4 electrodes 27
2.3 Characterization of rGO/Co3O4 pseudocapacitor 28
2.3.1 Electrochemical measurement for electrochemical performance of pseudocapacitor 28
2.3.2 Physicochemical analysis of pseudocapacitor 28
3. Results and Discussion 29
3.1 Electrochemical and physicochemical analysis of rGO/Co3O4(C) and rGO/Co3O4(P) 29
3.1.1 Electrochemical performance and structural analysis of rGO and Co3O4 29
3.1.2 Electrochemical performance of rGO/Co3O4(C) and rGO/Co3O4(P) 32
3.1.3 Physicochemical analysis of GO(C), GO(P), rGO/Co3O4(C), and rGO/Co3O4(P) 35
3.2 Electrochemical and physicochemical analysis of rGO/Co3O4(P-0), rGO/Co3O4(P-4), rGO/Co3O4(P-8), rGO/Co3O4(P-16) 39
3.2.1 Physicochemical analysis of GO(P-0), GO(P-4), GO(P-8), GO(P-16) and rGO/Co3O4(P-0), rGO/Co3O4(P-4), rGO/Co3O4(P-8), rGO/Co3O4(P-16) 39
3.2.2 Electrochemical analysis of rGO/Co3O4(P-0), rGO/Co3O4(P-4), rGO/Co3O4(P-8), rGO/Co3O4(P-16) 46
3.3 Correlation graphs 49
4. Conclusion 51
5. Reference 52
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dc.formatapplication/pdf-
dc.format.extent3302436 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectgraphene oxide/metal oxide pseudocapacitor-
dc.subject.ddc620-
dc.titleEffect of Surface Characteristics of Reduced Graphene Oxide on the Performance of Pseudocapacitor-
dc.typeThesis-
dc.description.degreeMaster-
dc.citation.pages56-
dc.contributor.affiliation공과대학 재료공학부-
dc.date.awarded2015-02-
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