AlphaMat: A Material Informatics Hub Connecting Data, Features, Models and Applications
Zhilong Wang, Junfei Cai, An Chen, Yanqiang Han, Kehao Tao, Simin Ye,, Shiwei Wang, Imran Ali, Jinjin Li

TL;DR
AlphaMat is a comprehensive AI platform that connects data, features, and models to accelerate material discovery and design across various applications, overcoming data limitations and enabling user-friendly access.
Contribution
It introduces the first material informatics hub that allows users to easily build AI models and discover new materials without extensive programming knowledge.
Findings
Modeling of 12 material attributes with high accuracy
Database of over 117,000 materials entries
Successful discovery of new materials in multiple fields
Abstract
The development of modern civil industry, energy and information technology is inseparable from the rapid explorations of new materials, which are hampered by months to years of painstaking attempts, resulting in only a small fraction of materials being determined in a vast chemical space. Artificial intelligence (AI)-based methods are promising to address this gap, but face many challenges such as data scarcity and inaccurate material descriptor coding. Here, we develop an AI platform, AlphaMat, that connects materials and applications. AlphaMat is not limited by the data scale (from 101 to 106) and can design structural and component descriptors that are effective for docking with various AI models. With prediction time of milliseconds and high accuracy, AlphaMat exhibits strong powers to model at least 12 common attributes (formation energy, band gap, ionic conductivity, magnetism,…
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Taxonomy
TopicsMachine Learning in Materials Science · X-ray Diffraction in Crystallography
