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Far-field thermal imaging below diffraction limit
Author(s) -
Amirkoushyar Ziabari,
Maryam Parsa,
Yi Xuan,
JeHyeong Bahk,
Kazuaki Yazawa,
F. X. Álvarez,
Ali Shakouri
Publication year - 2020
Publication title -
optics express
Language(s) - Uncategorized
Resource type - Journals
SCImago Journal Rank - 1.394
H-Index - 271
ISSN - 1094-4087
DOI - 10.1364/oe.380866
Subject(s) - point spread function , diffraction , gaussian , optics , image resolution , regularization (linguistics) , inverse problem , finite element method , markov random field , image quality , thermal , random field , computer science , algorithm , physics , mathematics , mathematical analysis , image segmentation , image (mathematics) , artificial intelligence , statistics , quantum mechanics , meteorology , thermodynamics
Non-uniform self-heating and temperature hotspots are major concerns compromising the performance and reliability of submicron electronic and optoelectronic devices. At deep submicron scales where effects such as contact-related artifacts and diffraction limits accurate measurements of temperature hotspots, non-contact thermal characterization can be extremely valuable. In this work, we use a Bayesian optimization framework with generalized Gaussian Markov random field (GGMRF) prior model to obtain accurate full-field temperature distribution of self-heated metal interconnects from their thermoreflectance thermal images (TRI) with spatial resolution 2.5 times below Rayleigh limit for 530nm illumination. Finite element simulations along with TRI experimental data were used to characterize the point spread function of the optical imaging system. In addition, unlike iterative reconstruction algorithms that use ad hoc regularization parameters in their prior models to obtain the best quality image, we used numerical experiments and finite element modeling to estimate the regularization parameter for solving a real experimental inverse problem.

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