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  1. NTU Theses and Dissertations Repository
  2. 工學院
  3. 化學工程學系
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/23644
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor何國川(Kuo-Chuan Ho)
dc.contributor.authorDung-Jing Yangen
dc.contributor.author楊敦晴zh_TW
dc.date.accessioned2021-06-08T05:06:41Z-
dc.date.copyright2011-07-07
dc.date.issued2011
dc.date.submitted2011-07-01
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dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/23644-
dc.description.abstractIn this thesis, a novel process for the preparation of Prussian blue (PB) electrode was presented with the electro-optical properties of the PB film. Also, an optimization work of a complementary thin-film-type device composed of PB, poly (3, 4-ethylenedioxythiophene) (PEDOT), and ionomeric poly(vinyl butyral) (PVB) and a complementary hybrid-type device composed of PB, heptyl violoten (HV), and succinonitrile were studied.
A novel process is developed for the preparation of Prussian PB film, involving its electrodeposition from its precursor solution, containing additionally the surfactant, cetyltrimethylammonium bromide (CTAB); the film is denoted as CTAB-modified PB film. The present approach allows for mitigating the energy barrier of redox reactions between Prussian blue and its reduced state, Everitt’s salt. The absorbance spectra of the CTAB-modified PB exhibit a maximal optical difference at 690 nm. The transmittance changes (ΔT) of CTAB-modified PB film and unmodified PB film were measured in the electrolyte of 0.5 M KCl and 0.01 M HCl at 690 nm. It reveals that CTAB-PB film took 4.2 s and 2.4 s for darkening (oxidation) and bleaching (reduction), respectively, for 44.2% transmittance change (ΔT), whereas the unmodified film required 35 s and 55 s for 42.1% of ΔT. By an electrochemical quartz crystal microbalance (EQCM) analysis, it is observed that the insertion and extraction of potassium ions and water molecules at the interface of the CTAB-modified PB film and the electrolyte solution are faster than those of the unmodified PB film. It result from the less charge transfer resistance of the CTAB-modified PB film than that of the unmodified film. Also, during the potential-cycling of the CTAB-modified PB film, it was found to be stable, with reference to the stability of the unmodified PB film.
An ionomeric PVB electrolyte was employed for a complementary thin-film-type electrochromic device. The anodically coloring material and the cathodically coloring material of the device are PB and PEDOT, respectively. Both electrodes were characterized in LiClO4 propylene carbonate (PC) solution individually. The ionic conductivity of ionomeric PVB electrolyte can reach 9.9×10-4 S/cm. With sandwiched the PVB electrolyte between PB electrolyte and PEDOT electrode, the device has optimal absorbance change at 620 nm on the equilibrium spectrum. It provides 39.8% transmittance change (ΔT) at 620 nm by switching at the range between 1.0 and -1.1 V (PEDOT vs. PB) with a bleaching time of 1.2 s and a darkening time of 1.5 s. The coloration efficiency at 620 nm of the device was calculated to be 270.8 cm2/C. The device performs 37.28 % of optical contrast at 690 nm for the first cycle, be activated after 5 cycles. Experiencing 15,000-cycle operation, the transmittance change is only 32.1% left.
Another complementary electrochromic device which was hybrid type and all-solid-state was also assembled. Composed of PB and HV, it had the supporting electrolyte in succinonitrile matrix. By applying different potential bias, the device could exhibit various color intensities. The maximal transmittance change was located at 610 nm. Operated from 0.0 V to -1.8 V, the device showed its transmittance from 76.97 to 4.30% at 610 nm, with a transmittance change of 72.67%. The effects of operation conditions, the darkening voltages, and the bleaching voltages on the response time were also observed. Moreover, the device, operating between 0.0 and -1.6 V, remained 67.57% of transmittance change after 50,000 cycles.
en
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en
dc.description.tableofcontentsAcknowledgement (致謝) I
Chinese Abstract (中文摘要) II
English Abstract IV
Table of Contents VII
List of Tables XI
List of Figures XII
Chapter 1 Introduction 1
1-1 Preface 1
1-2 Development and Application of Electrochromism 2
1-3 Classification of Electrochromic Materials 5
1-4 Classification of Electrochromic Devices 7
1-4-1 Solution Type 10
1-4-2 Thin-film Type 11
1-4-3 Hybrid Type 12
Chapter 2 Literature Review and Research Motivation 14
2-1 Electrochromic Materials 14
2-1-1 Prussian Blue 14
2-1-2 Conducting Polymers 19
2-1-3 Viologens 31
2-2 Electrolytes 33
2-2-1 Poly (Vinyl Butyral) 33
2-2-2 Succinonitrile 37
2-3 Motivation and Research Objectives 38
Chapter 3 Experimental 40
3-1 Instruments 40
3-2 Materials and Reagents 41
3-3 Experimental Methods 42
3-3-1 Preparation of Conducting Glasses 42
3-3-2 Electrochromic Layers 43
3-3-3 Electrolytes 44
3-3-4 Fabrication of Electrochromic Devices 45
3-4 Measurements and Analysis 46
3-4-1 Measurements of Electrochemical Properties of Materials
and ECDs 46
3-4-2 Measurements of Electrochromic Properties of Materials
and ECDs 48
3-4-3 EQCM Analysis of Electrochromic Layers 51
3-4-4 EIS Analysis of Electrolytes 51
3-4-5 CIE Color Space 52
Chapter 4 Characterization of Materials 54
4-1 Effect of Electrodeposition Methods on Prussian Blue Thin Films 54
4-1-1 Cyclic Voltammetry 54
4-1-2 UV-Visible Spectroscopy and CIE Color Space 57
4-1-3 Step Response 62
4-1-4 Coloration Efficiency 63
4-1-5 EQCM Analysis 65
4-1-6 Morphology 73
4-2 Conductivity of Ionomeric PVB 76
4-3 Characterization of Cathodic Coloration Materials 78
4-3-1PEDOT 78
4-3-2 Heptyl Viologen 83
Chapter 5 Performances of the Electrochromic Devices 88
5-1 The Thin-film Type Electrochromic Device: PB-PEDOT ECD 88
5-1-1 Cyclic Voltammogram of PB-PEDOT ECD 88
5-1-2 Optical Properties of PB-PEDOT ECD 89
5-1-3 Step Response of PB-PEDOT ECD 93
5-1-4 Effect of Charge Capacity Ratio 98
5-1-5 Performances on Long-term Stability 100
5-2 The Hybrid Type Electrochromic Device: PB-HV ECD 103
5-2-1 Cyclic Voltammogram of PB-HV ECD 103
5-2-2 Optical Performances of PB-HV ECD 104
5-2-3 Step Response of PB-HV ECD 108
Chapter 6 Conclusions and Suggestions 114
6-1 Conclusions 114
6-1-1 The Electrochromic Properties of Prussian Blue 114
6-1-2 The Performances of the Thin-Film Type Device 115
6-1-3 The Performances of the Hybrid Type Device 115
6-2 Suggestions 116
References 117
Appendix - Curriculum Vitae 131
dc.language.isoen
dc.title含普魯士藍薄膜式及混合式之電致色變元件zh_TW
dc.titleOn the Thin-Film and Hybrid Types Electrochromic Devices Containing Prussian Blueen
dc.typeThesis
dc.date.schoolyear99-2
dc.description.degree碩士
dc.contributor.oralexamcommittee吳嘉文,楊明長,周澤川,林正嵐
dc.subject.keyword十六烷基三甲基溴化銨,電化學石英晶體為天平,電致色變元件,快速變色,普魯士藍,聚二氧乙基噻,吩,聚縮丁醛,紫晶,全固態,zh_TW
dc.subject.keywordAll-solid-state device,Cetyltrimethylammonium bromide (CTAB),Electrochemical quartz crystal microbalance (EQCM),Electrochromic device,Fast switching,Prussian blue (PB),Poly (3, 4-ethylenedioxythiophene) (PEDOT),Poly (vinyl butyral) (PVB),Viologen,en
dc.relation.page132
dc.rights.note未授權
dc.date.accepted2011-07-01
dc.contributor.author-college工學院zh_TW
dc.contributor.author-dept化學工程學研究所zh_TW
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