Shenghong Ju; Junichiro Shiomi · 2019 · Nanoscale and Microscale Thermophysical Engineering
Paper
With the advances in materials and integration of electronics and thermoelectrics, the demand for novel crystalline materials with ultimate high/low thermal conductivity is increasing. However, search for optimal thermal materials is a challenge due to the tremendous degrees of freedom in the composition and structure of crystal compounds and nanostructures, and thus empirical search would be exhausting. Materials informatics, which combines the simulation/experiment with machine learning, is now gaining great attention as a tool to accelerate the search of novel thermal materials. In this review, we discuss recent progress in developing materials informatics (MI) for heat transport: the exploration of crystals with high/low-thermal conductivity via high-throughput screening, and nanostructure design for high/low-thermal conductance using the Bayesian optimization and Monte Carlo tree search. The progresses show that the MI methods are useful for designing thermal functional materials. We end by addressing the remaining issues and challenges for further development.
Analysis
This review explores the application of materials informatics (MI) to accelerate the discovery and design of novel crystalline materials with tailored thermal conductivity for electronics and thermoelectrics.
Discovery
Yang D; Zheng Z; Wang H; Zhao H; Li Z; Liu Y; Xiong Y; Luo Z
Michael Baldea; Linda J. Broadbelt; Marianthi G. Ierapetritou; Akhilesh Jain; Ankur Kumar; Thomas A. Kwan; Fèlix Llovell; Andrew J. Medford; Ilias Mitrai; Joel Paulson; Junyi Qiao; Matthew P. Rivera; Kirti C. Sahu; Lev Sarkisov; Zachary P. Smith; Calvin Tsay; Ching-Mei Wen; Victor M. Zavala; Huacheng Zhang; Dan Zhao
Bernard Mallia; Rossana Caputo
Mohamed Hamidi; Mohamed Loutou
Paul Hagemann; Simon Müller; Janine George; Philipp Benner
Mihail Kolev
Source record