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Bivariate Lifetime Model and Validation Procedure for Organic Light-Emitting Diode Displays : 유기발광 디스플레이 수명 모델 제안 및 모델 검증 체계 연구

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dc.contributor.advisor윤병동-
dc.contributor.author김대환-
dc.date.accessioned2018-05-28T16:06:05Z-
dc.date.available2018-05-28T16:06:05Z-
dc.date.issued2018-02-
dc.identifier.other000000149621-
dc.identifier.urihttps://hdl.handle.net/10371/140546-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 공과대학 기계항공공학부, 2018. 2. 윤병동.-
dc.description.abstractDespite the advantages of organic light-emitting diode (OLED) displays over liquid crystal displays, OLED displays suffer from reliability concerns related to luminance degradation and color shift. In particular, existing testing schemes are unable to reliably estimate the lifetime of large OLED displays (i.e., displays of 55 inches or larger). The limited number of test samples and the immature technology result in great hurdles for timely product development.
This study proposes a statistical approach to develop a lifetime model for OLED panels. The proposed approach incorporates manufacturing and operational uncertainties, and accurately estimates the lifetime of the OLED panels under normal usage conditions. The proposed statistical analysis approach consists of: (1) design of accelerated degradation tests (ADTs) for OLED panels, (2) establishment of a systematic scheme to build bivariate lifetime models for OLED panels, (3) development of two bivariate lifetime models for OLED panels, and (4) statistical model validation for the heat dissipation analysis model for OLED TV design. This four-step statistical approach will help enable accurate lifetime prediction for large OLED panels subjected to various uncertainties. Thereby, this approach will foster efficient and effective OLED TV design to meet desired lifespan requirements.
Furthermore, two bivariate acceleration models are proposed in this research to estimate the lifetime of OLED panels under real-world usage conditions, subject to manufacturing and operational uncertainties. These bivariate acceleration models take into account two main factors—temperature and initial luminance intensity. The first bivariate acceleration model estimates the luminance degradation of the OLED panel
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dc.description.abstractthe second estimates the panels color shift. The lifespan predicted by the proposed lifetime model shows a good agreement with experimental results.
Ensuring the color shift lifetime is a great hurdle for OLED product development. However, at present, there is no effective way to estimate the color shift lifetime at the early stages of product development while the product design is still changing. The research described here proposes a novel scheme for color shift lifetime analysis. The proposed method consists of: (1) a finite element model for OLED thermal analysis that incorporates the uncertainty of the measured surface temperature, (2) statistical model validation, including model calibration, to verify agreement between the predicted results and a set of experimental data (achieved through adjustment of a set of physical input variables and hypothesis tests for validity checking to measure the degree of mismatch between the predicted and observed results), and (3) a regression model that can predict the color shift lifetime using the surface temperature at the early stages of product development. It is expected that the regression model can substantially shorten the product development time by predicting the color shift lifetime through OLED thermal analysis.
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dc.description.tableofcontentsChapter 1. Introduction 1
1.1 Background and Motivation 1
1.2 Overview and Significance 2
1.3 Thesis Layout 6
Chapter 2. Literature Review 8
2.1 Accelerated Testing 8
2.2 Luminance Degradation Model for OLEDs 12
2.3 Color Shift of OLEDs 14
2.4 Verification and Validation Methodology 16
Chapter 3. OLED Degradation 28
3.1 Chromaticity and the Definition of Color Shift Lifetime 30
3.2 Degradation Mechanism 31
3.2.1 Luminance Degradation Mechanism 33
3.2.2 Color Shift Mechanism 34
3.3 Performance Degradation Models 36
3.3.1 Performance Degradation Model 36
3.3.2 Performance Color Shift Model 38
3.4 Acceleration Model 38
Chapter 4. Acceleration Degradation Testing (ADT) for OLEDs 42
4.1 Experimental Setup 42
4.2 Definition of the Time to Failure 46
4.2.1 The Time to Failure of Luminance 46
4.2.2 The Time to Failure of Color Shift 47
4.3 Lifespan Test Results 50
Chapter 5. Bivariate Lifetime Model for OLEDs 53
5.1 Fitting TTF Data to the Statistical Distribution 53
5.1.1 Estimation of Lifetime Distribution Parameters 53
5.1.2 Estimation of the Common Shape Parameter 58
5.1.3 Likelihood-Ratio Analysis 62
5.2 Bivariate Lifetime Model 64
5.2.1 Luminance Lifetime Model 64
5.2.2 Color Shift Lifetime Model 66
5.3 Validation of the Lifetime Model 67
Chapter 6. Statistical Model Validation of Heat Dissipation Analysis Model 77
6.1 Estimation Method for TTF using Surface Temperature 79
6.2 Thermal Analysis Model for OLED Displays 81
6.3 Statistical Calibration using the EDR Method 82
6.4 Validity Check 87
6.5 Results and Discussion 90
Chapter 7. Case Study 93
7.1 Computational Modeling 93
7.2 Estimation of Color Shift 95
7.3 Estimation of Luminance Degradation 96
Chapter 8. Contributions and Future Work 98
8.1 Contributions and Impacts 98
8.2 Suggestions for Future Research 103
References 104
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dc.formatapplication/pdf-
dc.format.extent6152616 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectStatistical Model Validation-
dc.subjectOrganic Light-Emitting Diode (OLED)-
dc.subjectAccelerated Degradation Test (ADT)-
dc.subjectLifetime Model-
dc.subjectColor Shift-
dc.subject.ddc621-
dc.titleBivariate Lifetime Model and Validation Procedure for Organic Light-Emitting Diode Displays-
dc.title.alternative유기발광 디스플레이 수명 모델 제안 및 모델 검증 체계 연구-
dc.typeThesis-
dc.description.degreeDoctor-
dc.contributor.affiliation공과대학 기계항공공학부-
dc.date.awarded2018-02-
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