An ab initio electronic transport database for inorganic materials

Ricci, Francesco;Aydemir, Umut;Snyder, G. Jeffrey;Rignanese, Gian-Marco;Hautier, Geoffroy;et.al.
(2017) Scientific Data — Vol. 4, p. 170085 (2017)

Files

sdata201785.pdf
  • Open Access
  • Adobe PDF
  • 1.42 MB

Details

Authors
  • Ricci, FrancescoUCLouvain
    Author
  • Aydemir, UmutDepartment of Materials Science and Engineering, Northwestern University, Campus Drive, Evanston, Illinois
    Author
  • Snyder, G. JeffreyDepartment of Materials Science and Engineering, Northwestern University, Campus Drive, Evanston, Illinois
    Author
  • Author
  • Hautier, GeoffroyUCLouvain
    Author
Show more
Abstract
Electronic transport in materials is governed by a series of tensorial properties such as conductivity, Seebeck coefficient, and effective mass. These quantities are paramount to the understanding of materials in many fields from thermoelectrics to electronics and photovoltaics. Transport properties can be calculated from a material’s band structure using the Boltzmann transport theory framework. We present here the largest computational database of electronic transport properties based on a large set of 48,000 materials originating from the Materials Project database. Our results were obtained through the interpolation approach developed in the BoltzTraP software, assuming a constant relaxation time. We present the workflow to generate the data, the data validation procedure, and the database structure. Our aim is to target the large community of scientists developing materials selection strategies and performing studies involving transport properties.
Affiliations

Citations

Ricci, F., Aydemir, U., Snyder, G. J., Rignanese, G.-M., Jain, A., & Hautier, G. (2017). An ab initio electronic transport database for inorganic materials. Scientific Data, 4, 170085. https://doi.org/10.1038/sdata.2017.85 (Original work published 2017)