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Computational discovery of an enormous class of stable quaternary chalcogenides with very low lattice thermal conductivity

ORAL

Abstract

The development of efficient thermal energy management devices such as thermoelectrics, barrier coatings, and thermal data storage disks often relies on semiconductors with very low lattice thermal conductivity (κL). Here, we present the discovery of an enormous class of thermodynamically stable quaternary chalcogenides AMM'Q3 (A=Alkali, alkaline earth, post transition metals; M,M'=transition metals, lanthanides; Q= chalcogens) that possess intrinsically low κL using high-throughput DFT calculations. Leveraging the computed energetics of hundreds of thousands of multinary compounds in the Open Quantum Materials Database (OQMD), we discovered a very large number of thermodynamically stable chalcogenides. Our materials design strategy relies on successive phase stability screening based on the calculated enegetics of all known crystallographic prototypes in the family of experimentally known AMM'Q3 compounds. We validate the presence of very low κL in this chalcogenides family by calculating the κL of several predicted stable compounds using the Peierls-Boltzmann transport equation for phonos in a first-principles framework. Our predictions suggest new experimental research opportunities in the synthesis and characterization of these stable, low-κL compounds.

Presenters

  • Koushik Pal

    Northwestern University

Authors

  • Koushik Pal

    Northwestern University

  • Yi Xia

    Northwestern University

  • Jiahong Shen

    Northwestern University

  • Jiangang He

    Northwestern University

  • Yubo Luo

    Northwestern University

  • Mercouri Kanatzidis

    Chemistry, Northwestern University, Argonne National Laboratory, Northwestern University, Chemistry Department, Northwestern University

  • Christopher Wolverton

    Northwestern University, Materials Science and Engineering, Northwestern University