Machine-learning and high-throughput studies for high-entropy materials

计算机科学 系统工程 工程类
作者
E‐Wen Huang,Wen‐Jay Lee,Sudhanshu S. Singh,P. S. Prakash Kumar,Chih‐Yu Lee,Tu‐Ngoc Lam,Hsu-Hsuan Chin,Bi‐Hsuan Lin,Peter K. Liaw
出处
期刊:Materials Science and Engineering R [Elsevier BV]
卷期号:147: 100645-100645 被引量:146
标识
DOI:10.1016/j.mser.2021.100645
摘要

The combination of multiple-principal element materials, known as high-entropy materials (HEMs), expands the multi-dimensional compositional space to gigantic stoichiometry. It is impossible to afford a holistic approach to explore each possibility. With the advance of the materials genome initiative and characterization technology, a high-throughput (HT) approach is more reasonable, especially to identify the specified functions for the new HEMs development. There are three major components for the HT approach, which are the computational tools, experimental tools, and digital data. This article reviews both the materials informatics and experimental approaches for the HT methods. Applications of these tools on composition-varying samples can be used to obtain stoichiometry effectively and phase-structure-property relationships efficiently for the materials-property database establishment. They can also be used in conjunction with machine learning (ML) to improve the predictability of models. These ML tools will be an essential part of HT approaches to develop the new HEMs. The ML-developed HEMs together with ML-created other materials are positioned in this manuscript for future HEMs advancement. Comparing all the reviewed properties, the hierarchical microstructures together with the heterogeneous grain sizes show the highest potential to apply ML for new HEMs, which needs HT validations to accelerate the development. The promising potential and the database from the HEMs exploration would shed light on the future of humanity building from the scratch of Mars regolith.
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