Discovery of complex oxides via automated experiments and data science

Author:

Yang LusannORCID,Haber Joel A.ORCID,Armstrong Zan,Yang Samuel J.ORCID,Kan Kevin,Zhou Lan,Richter Matthias H.ORCID,Roat Christopher,Wagner Nicholas,Coram Marc,Berndl MarcORCID,Riley Patrick,Gregoire John M.ORCID

Abstract

The quest to identify materials with tailored properties is increasingly expanding into high-order composition spaces, with a corresponding combinatorial explosion in the number of candidate materials. A key challenge is to discover regions in composition space where materials have novel properties. Traditional predictive models for material properties are not accurate enough to guide the search. Herein, we use high-throughput measurements of optical properties to identify novel regions in three-cation metal oxide composition spaces by identifying compositions whose optical trends cannot be explained by simple phase mixtures. We screen 376,752 distinct compositions from 108 three-cation oxide systems based on the cation elements Mg, Fe, Co, Ni, Cu, Y, In, Sn, Ce, and Ta. Data models for candidate phase diagrams and three-cation compositions with emergent optical properties guide the discovery of materials with complex phase-dependent properties, as demonstrated by the discovery of a Co-Ta-Sn substitutional alloy oxide with tunable transparency, catalytic activity, and stability in strong acid electrolytes. These results required close coupling of data validation to experiment design to generate a reliable end-to-end high-throughput workflow for accelerating scientific discovery.

Funder

DOE | SC | Basic Energy Sciences

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Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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