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Analysis of Faradaic Reaction and Its Effect on Desalination Performance in Capacitive Deionization : 축전식 탈염공정에서 패러데이 반응 분석 및 담수화 성능에 미치는 영향

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dc.contributor.advisor윤제용-
dc.contributor.author유지현-
dc.date.accessioned2017-10-27T16:46:16Z-
dc.date.available2017-10-27T16:46:16Z-
dc.date.issued2017-08-
dc.identifier.other000000146298-
dc.identifier.urihttps://hdl.handle.net/10371/136854-
dc.description학위논문 (박사)-- 서울대학교 대학원 공과대학 화학생물공학부, 2017. 8. 윤제용.-
dc.description.abstractCapacitive deionization (CDI) is a desalination technique that removes salt from the saline water, applying a potential difference between two porous activated carbon electrodes. Membrane assisted CDI (MCDI) is a commonly used system that improves performance by installing an ion exchange membrane in the CDI system. CDI is mainly known to be deionized by Non Faradaic reaction, but recently there have been limited reports on H2O2 generation, pH change and oxidation of carbon electrode in relation to Faradaic reaction. Therefore, the detailed study of Faradaic reaction characteristics in CDI and MCDI systems is required.
The purpose of this study is to investigate the characteristics of the Faradaic reaction and the quantitative effect on the desalination performance in flow-mode CDI and MCDI systems. As major results, firstly, the H2O2 formation and effluent pH change in case of MCDI ([H2O2] = 5.5 μM) were much smaller than that of CDI (37.0 μM), indicating the less occurrence of Faradaic reactions for MCDI. However, the surface pH of carbon electrode in the MCDI was much more acidic (pH ~1.5) at the anode and more basic at the cathode (pH ~ 11.7), indicating the deterred transfer of byproducts (OH- and H+) generated in the compartment inside of ion change membrane. In addition, the quantitative analysis regarding the extent of Faradaic reaction between these two systems were provided based on measured byproducts. Secondly, the long-term study indicated that the performance reduction of deionization in MCDI (17%) was much smaller than that of CDI (85%), which can be supported by their asymmetrically oxidized anode analyzed by FT-IR, CV, and XPS. In addition, the strategies to overcome the performance reduction by coating the carbon electrode with ion exchange polymer or applying alternate reverse potential were suggested. Finally, the deep understanding about Faradaic reactions affecting short-term or long-term CDI performance can ultimately contribute to the development of CDI performance and long-term stability.
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dc.description.tableofcontents1. Introduction ........................................................................... 1
1.1. Backgrounds .................................................................................... 1
1.2. Objectives ......................................................................................... 4
2. Literature review .................................................................. 6
2.1. CDI and MCDI ................................................................................ 6
2.2. Faradaic reactions ......................................................................... 16
2.3. Performance in long-term operation ........................................... 34
3. The quantitative analysis of detailed Faradaic reaction and the effect of reaction products on deionization performance ............................................................................ 41
3.1. Materials and Methods ................................................................. 41
3.1.1. Electrode fabrication ....................................................................... 41
3.1.2. Capacitive deionization experiments ............................................. 42
3.1.3. Removal of dissolved oxygen in feed .............................................. 44
3.1.4. Electrochemical characterizations ................................................. 45
3.1.5. Measurement of effluent H2O2 ....................................................... 46
3.1.6. Measurement of surface pH of electrodes ..................................... 47
3.1.7. Deionization capacity evaluation .................................................... 48
3.1.8. Charge consumption distribution .................................................. 49
3.2. Results and Discussion .................................................................. 52
3.2.1. Temporal and spatial pH distribution ........................................... 52
3.2.2. Hydrogen peroxide generation ....................................................... 57
3.2.3. Galvanostatic charge/discharge performance ............................... 59
3.2.4. Effect of Faradaic reaction products on deionization capacity ... 64
3.2.5. Quantitative analysis of charge consumption distribution .......... 68
3.3. Summary ........................................................................................ 72
4. The analysis of changes in Faradaic reaction and deionization performance in long-term operation .............. 75
4.1. Materials and Methods ................................................................. 75
4.1.1. Long-term capacitive deionization experiment ............................ 75
4.1.2. Electrochemical characterizations of long-term cycled electrode 76
4.1.3. Evaluation of long-term cycled CDI performance ....................... 77
4.1.4. Modification of operating condition and electrodes ..................... 78
4.2. Results and Discussion .................................................................. 80
4.2.1. Changes of Faradaic reaction in long-term CDI .......................... 80
4.2.2. Asymmetric oxidation of anode ...................................................... 86
4.2.3. Deterioration of long term performance ....................................... 93
4.2.4. Change of charge consumption distribution in long-term operation 100
4.2.5. Improvement of long-term stability by Faradaic reaction control 105
4.3. Summary ...................................................................................... 113
5. Conclusion.......................................................................... 114
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dc.formatapplication/pdf-
dc.format.extent4076041 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectcapacitive deionization-
dc.subjectdesalination-
dc.subjectFaradaic reaction-
dc.subjectpH distribution-
dc.subjectH2O2 generation-
dc.subjectcarbon electrode oxidation-
dc.subjectcharge consumption-
dc.subject.ddc660.6-
dc.titleAnalysis of Faradaic Reaction and Its Effect on Desalination Performance in Capacitive Deionization-
dc.title.alternative축전식 탈염공정에서 패러데이 반응 분석 및 담수화 성능에 미치는 영향-
dc.typeThesis-
dc.contributor.AlternativeAuthorYu, Jihyun-
dc.description.degreeDoctor-
dc.contributor.affiliation공과대학 화학생물공학부-
dc.date.awarded2017-08-
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