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Two-dimensional photonic crystal band-edge laser using colloidal quantum dots as gain material : 콜로이드 양자점을 이득 물질로 이용한 이차원 광자결정 띠가장자리 레이저

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dc.contributor.advisor전헌수-
dc.contributor.author장호준-
dc.date.accessioned2017-07-19T06:10:45Z-
dc.date.available2017-07-19T06:10:45Z-
dc.date.issued2016-02-
dc.identifier.other000000133046-
dc.identifier.urihttp://dcollection.snu.ac.kr:80/jsp/common/DcLoOrgPer.jsp?sItemId=000000133046-
dc.description학위논문(박사)--서울대학교 대학원 :자연과학대학 물리·천문학부,2016. 2. 전헌수.-
dc.description.abstractSemiconductor-based lasers typically utilize multiple quantum wells (MQWs) for gain materials. Despite well-known advantages of MQW structure, emission wavelength is fixed in a narrow bandwidth, and device architecture become heavily dependent on substrate. This study focuses on solving such an issue by realizing highly tunable and less substrate-dependent laser device by combination of colloidal quantum dots and photonic crystal structure.
Core-shell type colloidal quantum dots (CQDs) exhibit efficient photoluminescence with widely tunable bandgaps based on quantum confinement effect. Not only could such core-shell type CQDs be used to replace epitaxially grown semiconductor gain materials, but also be functionalized for brand-new concepts of optical devices and applications. CQDs form a deposited film simply by conventional spin-coating method.
On the other hand, photonic crystal is a structure with periodic distribution of refractive index, in which periodicity dictates photonic band structure and photonic band gap. The useful feature has been used to fabricate lasers, waveguides and various other types of optical devices. In this study, properties of photonic band-edge mode are the focus of research, which slows the light in matter increasing the interaction in between.
This dissertation demonstrates lasing emission from a two-dimensional (2D) photonic crystal (PC) backbone with densely packed CQDs embedded within the PC as a gain material. The PC slab consists of a silicon nitride film on silica substrate, forming an asymmetric slab waveguide. Numerical analyses based on finite-difference time-domain method show that photonic band structure of a simple square lattice could have an M-point band-edge mode in the air-band. An array of air-holes is fabricated into a Si3N4 film by e-beam lithography and reactive ion etching with various air-hole diameters. On top of the PC backbone, CQDs are spin-coated and cured, resulting in the air-holes of the PC backbone infiltrated by CQDs to provide optical gain for lasing action. Completed CQD-PC laser device is then optically pumped using a sub-nanosecond 532 nm pulsed laser The CQD- PC laser showed double band-edge mode laser operation with emission linewidth less than 1 nm at full-width-half-maximum.
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dc.description.tableofcontentsChapter 1 Introduction 1
1.1 Limits of current status of semiconductor lasers 1
1.2 Alternative approach -colloidal quantum dot as a gain material 6
1.2.1 Colloidal quantum dots (CQDs) 6
1.2.2 Lasers based on colloidal quantum dots 6
1.2.3 Selection and supply of CQDs 8
1.2.4 Photonic crystals 11
1.2.5 Selection of types of PC lattices 14
1.3 Summary and outline of manuscripts 17
References 18

Chapter 2 Device Design and Numerical Analyses for CQD-PC Band-edge Laser 25
2.1 Introduction 25
2.1.1 Plane-wave expansion method 26
2.1.2 Finite-difference time-domain Method 27
2.2 Optical properties of materials for design 28
2.2.1 Indices of refraction: CQD film and Si3N4 slab 28
2.2.2 Optical properties of CQD film 31
2.2.3 Thickness of Si3N4 backbone slab waveguide 31
2.3 Design of CQD-PC laser 33
2.3.1 Principles of CQD-PC laser design 33
2.3.2 Photonic band structure of 2D square lattice PC by 2D PWE method 33
2.3.3 Photonic band structure of 2D square lattice PC by 3D FDTD method 36
2.4 Summary 40
References 41

Chapter 3 Fabrication of CQD-PC Band-edge Lasers 42
3.1 Introduction 42
3.2 Fabrication processes 44
3.2.1 PC backbone fabrication 44
3.2.2 CQD spin-coating 48
3.3 Devices fabricated by laser holographic lithography 52
3.4 Summary 56
References 57

Chapter 4 Measurements, Results, and Discussion 58
4.1 Introduction 58
4.2 Measurements and results 60
4.2.1 Micro-photoluminescence setup 60
4.2.2 Measurement of CQD-PC laser with nominal 80 nm-thick CQD over-layer 62
4.2.3 CQD over-layer analyses: T-130 device 65
4.2.4 Measurement of CQD-PC laser with nominal 60 nm-thick CQD over-layer 69
4.2.5 CQD over-layer analyses: T-80 device 73
4.3 Discussion: T-80 vs. T-130 76

Chapter 5 Conclusion 80

Appendices 81
A Preparation of CQD film 81
B Modal gain and confinement factor 83

Abstract in Korean 86
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dc.format.extent87-
dc.language.isoeng-
dc.publisher서울대학교 대학원-
dc.subjectColloidal Quantum Dot, Photonic crystal laser, Photonic band-edge modes-
dc.subject.ddc523-
dc.titleTwo-dimensional photonic crystal band-edge laser using colloidal quantum dots as gain material-
dc.title.alternative콜로이드 양자점을 이득 물질로 이용한 이차원 광자결정 띠가장자리 레이저-
dc.typeThesis-
dc.typeDissertation-
dc.contributor.department자연과학대학 물리·천문학부-
dc.description.degreeDoctor-
dc.date.awarded2016-02-
dc.identifier.holdings000000000027▲000000000027▲000000133046▲-
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