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A Coupled Thermoreflectance Thermography Experimental System and Ultra-Fast Adaptive Computational Engine for the Complete Thermal Characterization of Three-Dimensional Electronic Devices : Validation

机译:用于三维电子器件完全热表征的耦合热反射热成像实验系统和超快速自适应计算引擎:验证

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摘要

This work builds on the previous introduction [1] of a coupled experimental-computational system devised to fully characterize the thermal behavior of complex 3D submicron electronic devices. The new system replaces the laser-based surface temperature scanning approach with a CCD camera-based approach. As before, the thermo-reflectance thermography system is used to non-invasively measure with submicron resolution the 2D surface temperature field of an activated device. The measured temperature field is then used as input for an ultra-fast inverse computational solution to fully characterize the thermal behavior of the complex three-dimensional device. For the purposes of this investigation, basic micro-heater devices were built, activated, and measured. In order to quantitatively validate the coupled experimental-computational system, the system was used to extract geometric features of a known device, thus assessing the system's ability to combine measured experimental results and computations to fully characterize complex 3D electronic devices.
机译:这项工作建立在耦合实验计算系统的先前介绍[1]之上,该系统旨在全面表征复杂的3D亚微米电子设备的热行为。新系统用基于CCD相机的方法取代了基于激光的表面温度扫描方法。如前所述,热反射热成像系统用于以亚微米分辨率无创地测量激活设备的2D表面温度场。然后,将测得的温度场用作超快速逆计算解决方案的输入,以全面表征复杂三维设备的热行为。为了该研究的目的,构建,激活和测量了基本的微型加热器设备。为了定量验证耦合的实验计算系统,该系统用于提取已知设备的几何特征,从而评估系统结合测量的实验结果和计算以全面表征复杂3D电子设备的能力。

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