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DC 欄位 | 值 | 語言 |
---|---|---|
dc.contributor.advisor | 劉如熹(Ru-Shi Liu) | |
dc.contributor.author | Julius Jr. Liclican Leano | en |
dc.contributor.author | 李岸歐 | zh_TW |
dc.date.accessioned | 2021-06-17T03:21:23Z | - |
dc.date.available | 2021-07-19 | |
dc.date.copyright | 2018-07-19 | |
dc.date.issued | 2018 | |
dc.date.submitted | 2018-06-22 | |
dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/69621 | - |
dc.description.abstract | Nitride phosphors emerged in the forefront of phosphor research and development due to the thermal and chemical stability derived from the various structural motifs that it could form. Doping with rare earth elements such as Eu2+ gives rise to red emission that is vital in improving the color rendering capacity of white light emitting diodes.
The UCr4C4-type nitrides are interesting phosphors with condensed framework (host) that gives rise to eight-nitrogen symmetric cuboid coordination site occupied by a cation and to which rare earth elements (activator) could be doped into. The optimization of the synthesis and preparation of these cuboid nitride phosphors via solid state reaction approach takes off from the rather long and multi-step radiofrequency approach. Using all-nitride starting materials, synthesis was done at high pressure and temperature affording pure-phase luminescent products. Spectral tuning was achieved by chemical tuning of the phosphors through the partial or full substitution of the activator (activator substitution) in the cuboid site, and/or the nitride framework (framework editing); and/or the cation that constitutes the host (cation tuning and co-doping). These three approaches were the gateways in unraveling the chemical, spectral and thermal behavior of these nitride phosphors. Activator substitution with use of Ce3+ instead of Eu2+ reveals completely different spectral properties. The spin-orbit coupled ground state of Ce3+ gives rise to a broad emission band that spans up to the red region offering interesting spectral properties towards practical lighting applications. a green-light excitable property with a broad emission band peaking at 580 and 620 nm. The assembly of an LED package through the sequential coating of a green phosphor (β-SiAlON), followed by Ce3+-doped nitride phosphor generated white light. Framework editing towards the improvement of thermal properties pertains to the chemical composition of the host. While maintaining the structure and electrical neutrality, (Mg2+-Al3+) couple is partially substituted with (Li+-Si4+) on Sr[Mg2Al2N4]. The solid solution generation through high-pressure solid state reaction demonstrated how thermal and photoluminescence properties can be improved by this chemical tuning strategy. Relative band broadening has also been correlating structural and photoluminescence behavior despite a single emitting crystallographic site. The cation tuning whereby the Sr2+ cation that occupies the cuboid site by substituting with the larger Ba2+ bringing along smaller thermal vibration frequency, enhanced the emission and systematically shifted it to the red region between 620-690 nm. This enables the development of tunable deep red phosphor for agricultural applications. Further insight into the enhanced thermal stability has been investigated. The unusual redshift with increasing Ba in the same structure reveals how the reduction of symmetry due to size mismatch explained the unusual redshift. Co-doping was explored whereby Tm3+ showed that Ba[Mg2Al2N4]:Eu2+could be tailored for near-infrared applications. The energy transfer from Eu2+ to Tm3+ extended the emission to the first biological window (~800 nm) thereby demonstrating potential use beyond LED lighting. The simplified preparation of this cuboids nitrides via solid-state approach enhances their upscale production, investigation, and use. Through this chemical tuning approaches, these cuboid phosphors have revealed interesting new luminescence properties, and mechanisms and insights that accounts for these have been offered. The systematic investigation of the effects of several compositional changes redounds to structural changes, spectral tuning and thermal improvement which are collectively vital in the design and development of phosphors for lighting applications and beyond. | en |
dc.description.provenance | Made available in DSpace on 2021-06-17T03:21:23Z (GMT). No. of bitstreams: 1 ntu-107-D03223123-1.pdf: 11775490 bytes, checksum: 5f9b0cac6ac6aab61b2f1e6b18527ae2 (MD5) Previous issue date: 2018 | en |
dc.description.tableofcontents | Acknowledgement i
Abstract iii List of Figures x List of Tables xxiv List of Abbreviations xxv Chapter 1. Introduction 1 1.1 Light, Vision, and Color 1 1.1.1 Light and lighting 1 1.1.2 The human eye and vision 2 1.1.3 Color science 4 1.2 Light-Emitting Diodes (LEDs) 5 1.2.1 Classification 6 1.2.2 LED properties and metrics 8 1.2.3 Market trends and prospects 10 1.3 Inorganic Phosphors 17 1.3.1 Jabłoński diagram 19 1.3.2 Nephelauxetic effect and crystal field splitting 21 1.3.3 Thermal quenching 23 1.4 Nitride Phosphors 25 1.4.1 Structural, electronic and thermal properties 25 1.4.2 Narrow-band emission 27 1.4.3 Thermal stability 55 1.5 Spectral Diversification 61 1.6 Persistent Luminescence 62 1.7 Research Objectives and Motivation 64 1.8 References (Chapter 1) 67 Chapter 2. Synthesis and Characterization 85 2.1 Synthesis 86 2.1.1 Materials and reaction conditions 86 2.2.2 Solid state reaction 88 2.2 Characterization 90 2.2.1 Crystal structure analysis 90 2.2.2 Photoluminescence (PL) 98 2.2.3 Electron microscopy 107 2.2.4 X-Ray Absorption Spectroscopy (XAS) 112 2.2.5 Solid state-Magic angle spinning-Nuclear magnetic resonance spectroscopy (ss-MAS NMR) 115 2.3 Light-Emitting Diode (LED) Fabrication 118 2.4 References (Chapter 2) 119 Chapter 3. Green-Light Excitable Ce3+-Doped Sr[Mg2Al2N4] 121 3.1 Introduction 121 3.2 Materials and Methods 122 3.2.1 Gas pressure sintering (GPS) 122 3.2.2 LED package 123 3.3 Results and Discussion 123 3.3.1 Structural analyses 123 3.3.2 Photoluminescence 131 3.4 Summary 138 3.5 References (Chapter 3) 138 Chapter 4. Disentangling Red Emission and Compensatory Defects in Sr[LiAl3N4]:Ce3+ Phosphor 141 4.1 Introduction 141 4.2 Materials and Methods 142 4.2.1 Gas pressure sintering (GPS) 142 4.2.2 LED package 143 4.3 Results and Discussion 143 4.3.1 Structural analyses 143 4.3.2 Photoluminescence 148 4.3.3 Time-resolved luminescence spectra 150 4.3.4 Luminescence decay curves 153 4.3.5 X-ray absorption near-edge structure (XANES) Ce L3 edge 156 4.3.7 Fabrication of white light-emitting diodes 158 4.4 Summary 159 4.5 References (Chapter 4) 160 Chapter 5. Spetral Tuning and Thermal Stability Improvement by Eu2+ and Li+-Si4+ Substitution of Narrowband Red-emitting Sr[Mg2Al2N4] Phosphor 163 5.1 Introduction 163 5.2 Experimental 166 5.2.1 Synthesis 166 5.2.2 Analyses 167 5.3 Results and Discussion 168 5.3.1 Structural analysis 168 5.3.2 Photoluminescence 175 5.3.3 Photoluminescence properties 178 5.3.4 Temperature-dependent PL 179 5.3.5 Energy transfer and luminescence decays 183 5.3.6 Thermal stability 188 5.3.7 High-pressure PL 192 5.3.8 X-ray absoprtion near-edge structure (XANES) Eu-L3 edge 193 5.4 Summary 194 5.5 References (Chapter 5) 196 Chapter 6. Tunable Deep Red Luminescence via Sr Ba Substitution of Sr1-xBax[Mg2Al2N4]:Eu2+ (x = 0–1) Phosphors for Agricultural Lighting 199 6.1 Introduction 199 6.2 Experimental 201 6.2.1 Synthesis 201 6.2.2 Analyses 202 6.3 Results and Discussion 202 6.3.1 Structural characterization 202 6.3.2 Scanning electron microscopy 212 6.3.3 Photoluminescence 213 6.3.4. Inhomogenous PL broadening 220 6.3.5 X-ray absorption at near-edge structure (XANES)-Eu-L3 edge 221 6.3.6 Thermal properties 222 6.3.7 Host-referred binding energy (HRBE) 227 6.4 Summary 230 6.5 References (Chapter 6) 230 Chapter 7. Broadband Near-InfraRed Persistent Emission of Ba[Mg2Al2N4] with Eu2+-Tm3+ after Red Light Charging 235 7.1 Introduction 235 7.2 Experimental 238 7.2.1 Synthesis 238 7.2.2 Optical measurement 239 7.2.3 Bio-imaging performance 239 7.3 Results and Discussion 240 7.3.1 Structural characterization 240 7.3.2. X-ray absorption at near-edge structure (XANES)-Tm-L3 edge 243 7.3.3. Photoluminescence (PL) properties 244 7.3.4 Persistent luminescence (PersL) properties 246 7.3.5 Red-light charging property 249 7.3.6. Luminescence mechanism 251 7.3.7. Red-light Charging Cycle 252 7.3.8 Bioimaging using the meat-covering method 253 7.4 Summary 254 7.5 References (Chapter 7) 255 Chapter 8. Conclusions 261 Publications in International Scientific Journals 267 Patents 268 Honors and Awards 269 Presentation in Conferences 270 | |
dc.language.iso | en | |
dc.title | 具八面體配位氮化物螢光粉之光譜調控與特性分析 | zh_TW |
dc.title | Spectral Tuning and Characterization of
Cuboid Nitride Phosphors | en |
dc.type | Thesis | |
dc.date.schoolyear | 106-2 | |
dc.description.degree | 博士 | |
dc.contributor.oralexamcommittee | 周必泰(Pi-Tai Chou),陳登銘(Teng-Ming Chen),劉陵崗(Ling-Kang Liu),陳引幹(In-Gann Chen),張嘉升(Chia-Seng (Jason) | |
dc.subject.keyword | 螢光粉,氮化物,光譜調控, | zh_TW |
dc.subject.keyword | phosphors,nitrides,spectral tuning,cuboid, | en |
dc.relation.page | 271 | |
dc.identifier.doi | 10.6342/NTU201800968 | |
dc.rights.note | 有償授權 | |
dc.date.accepted | 2018-06-22 | |
dc.contributor.author-college | 理學院 | zh_TW |
dc.contributor.author-dept | 化學研究所 | zh_TW |
顯示於系所單位: | 化學系 |
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