Origin of Ferroelectricity in Hafnia from Epitaxially Strain

ORAL

Abstract

The discovery of ferroelectricity in thin hafnia films[i], and recently in bulk yttrium-doped hafnia[ii] makes hafnia an attractive material for next generation electronics due to its robust ferroelectricity in nanoscale samples and its compatibility with silicon[iii]. However, its ferroelectricity is not understood. Other ferroelectrics usually lose their ferroelectricity for nanoscopic samples and thin films, and the hafnia ground state is non-polar baddeleyite. Here we study hafnia with density functional theory (DFT) under epitaxial strain and find that strain not only stabilizes the ferroelectric phases, but also leads to unstable modes and a downhill path in energy from the high temperature tetragonal structure. We find that under tensile epitaxial strain  the tetragonal phase will distort to one of the two ferroelectric phases: for  1.5 %, the  mode is unstable and leads to Pmn21, and at  3.75 %, coupling between this mode and the zone boundary M1 mode leads to Pca21.
 
[i] T. S. Boscke, J. Müller, D. Bräuhaus, U. Schröder, and U. Böttger, Appl. Phys. Lett. 99, 102903 (2011).


[ii] X. Xu, F.-T. Huang, Y. Qi, S. Singh, K. M. Rabe, D. Obeysekera, J. Yang, M.-W. Chu, and S.-W. Cheong, Nature

Materials 20, 826 (2021).


[iii] B. Noheda, and J. Íñiguez, Science 369, 1300-13301 (2020).

 

*This work is supported by U. S. Office of Naval Research Grants No. N00014-17-1-2768 and N00014-20-1-2699, and the Carnegie Institution for Science. Computations were supported by high-performance computer time and resources from the DoD High Performance Computing Modernization Program, including the Texas Advanced Computing Center (TACC) at The University of Texas at Austin (http://www.tacc.utexas.edu), Carnegie computational resources, and REC gratefully acknowledges the Gauss Centre for Supercomputing e.V. (www.gausscentre.eu) for funding this project by providing computing time on the GCS Supercomputer SuperMUC-NG at Leibniz Supercomputing Centre (LRZ, www.lrz.de)

Publication: arXiv:2108.09884 [cond-mat.mtrl-sci]

Presenters

  • Aldo Raeliarijaona

    • Carnegie Institution for Science

Authors

  • Aldo Raeliarijaona

    • Carnegie Institution for Science
  • R. E Cohen

    • Carnegie Inst of Washington
    • EPL, Carnegie Institution for Science
    • Carnegie Institution for Science