首页> 外文会议>International Conference on Thermal, Mechanical and Multi-Physics Simulation and Experiments in Microelectronics and Microsystems >Design of athermalized proximity coupled (APC) synthetic green laser opto-electronic package for microprojector displays: Numerical modeling and experiments
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Design of athermalized proximity coupled (APC) synthetic green laser opto-electronic package for microprojector displays: Numerical modeling and experiments

机译:微型管道耦合(APC)的液晶近距离耦合(APC)的设计显示:数值建模与实验

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Micro-projector based displays are proposed for information display for a number of consumer devices. These displays would provide larger images than existing fixed Liquid crystal displays. The two major components of micro-projector technology are the Light source and the Imaging technology. Three primary colors, red, blue and green are required to create full color images. The light sources in the projection technology would be semiconductor devices that emit these colors. These devices could be either light emitting diodes (LEDs) or lasers. To enable the laser based projection technology, red and blue lasers are commerically available. Native semiconductor green lasers are still in development. As an alternative, synthetic green light can be produced by passing 1060nm infra-red light emitted from a GaAs based semiconductor laser diode (LD) through second harmonic generation (SHG) crystal, thereby emitting the green light at 530 nm. The current research work proposes bringing the SHG structure in close proximity to the LD, thereby eliminating the use of any optics in between. The proximity coupling approach promises to reduce the number of package components and process cost significantly. This paper presents the mechanical package design, coefficient of thermal expansion based displacement estimates, thermal analysis wherein the thermal impedance is predicted and measured, thermo-mechanical analysis wherein the thermo-mechanical stresses and strains are predicted. Shock modeling has been done to understand the displacements of the waveguides during the shock event. Optical modeling is performed to estimate the coupling efficiency change as a function of lateral and longitudinal offset between the LD and SHG waveguides. Finally, an assembled package that generated green light using this design is presented.
机译:提出了基于微投影仪的显示器,用于一些消费设备的信息显示。这些显示器将提供比现有的固定液晶显示器更大的图像。微投影技术的两个主要组件是光源和成像技术。需要三种原色,红色,蓝色和绿色来创建全彩色图像。投影技术中的光源将是发出这些颜色的半导体器件。这些设备可以是发光二极管(LED)或激光器。为了使基于激光的投影技术,红色和蓝色激光器在商业上可用。本机半导体绿色激光器仍在开发中。作为替代方案,可以通过通过第二谐波产生(SHG)晶体从GaAs的半导体激光二极管(LD)发射的1060nm射出红光来产生合成绿光,从而在530nm处发射绿光。目前的研究工作提出将SHG结构靠近LD,从而消除了任何介于之间的任何光学器件的使用。接近耦合方法有望减少包装组件的数量和过程成本显着。本文介绍了机械包装设计,基于热膨胀系数的位移估计,预测和测量了热阻抗的热分析,其中预测了热机械应力和菌株。已经完成了冲击建模以了解在休克事件期间波导的位移。执行光学建模以估计作为LD和SHG波导之间的横向和纵向偏移的函数的耦合效率变化。最后,介绍了使用该设计产生绿灯的组装包装。

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