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Fast and accurate machine learning prediction of phonon scattering rates and lattice thermal conductivity

Engineering and Technology

Fast and accurate machine learning prediction of phonon scattering rates and lattice thermal conductivity

Z. Guo, P. R. Chowdhury, et al.

Unlock the secrets of lattice thermal conductivity with groundbreaking machine learning techniques developed by Ziqi Guo and colleagues. This study achieves unprecedented accuracy in predicting phonon scattering rates and thermal conductivity, overcoming challenges of high skewness and complex contributions. Experience a leap in computational efficiency that paves the way for large-scale thermal transport informatics.

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~3 min • Beginner • English
Abstract
Lattice thermal conductivity is important for many applications, but experimental measurements or first principles calculations including three-phonon and four-phonon scattering are expensive or even unaffordable. Machine learning approaches that can achieve similar accuracy have been a long-standing open question. Despite recent progress, machine learning models using structural information as descriptors fall short of experimental or first principles accuracy. This study presents a machine learning approach that predicts phonon scattering rates and thermal conductivity with experimental and first principles accuracy. The success of our approach is enabled by mitigating computational challenges associated with the high skewness of phonon scattering rates and their complex contributions to the total thermal resistance. Transfer learning between different orders of phonon scattering can further improve the model performance. Our surrogates offer up to two orders of magnitude acceleration compared to first principles calculations and would enable large-scale thermal transport informatics.
Publisher
npj Computational Materials
Published On
Jun 02, 2023
Authors
Ziqi Guo, Prabudhya Roy Chowdhury, Zherui Han, Yixuan Sun, Dudong Feng, Guang Lin, Xiulin Ruan
Tags
thermal conductivity
phonon scattering
machine learning
thermal transport
computational efficiency
data-driven
first principles
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