Ferroic Coupling in Layered Perovskites from First Principles

ORAL

Abstract

Antiferrodistortive SrTiO$_3$ can be driven ferroelectric with a modest amount of biaxial strain. The n = 1 Ruddlesden-Popper remains paraelectric and undistorted for the same strain state. Elucidating the manner in which ferroic instabilities emerge as the number of perovskite blocks, n, increases is a fundamentally interesting challenge in its own right, yet a proper understanding could open new avenues in materials design. Combining first-principles calculations and symmetry arguments, we study the effect of strain (or pressure) and dimensionality on ferroic coupling in the layered Sr-Ti-O perovskites.

Authors

  • Turan Birol

    • School of Applied and Engineering Physics
  • Nicole Benedek

    • Cornell Center for Materials Research
    • Cornell Center for Materials Research, Cornell University
  • Craig Fennie

    • Cornell
    • School of Applied and Engineering Physics
    • Department of Applied and Engineering Physics, Cornell University, Ithaca, New York
    • School of Applied and Engineering Physics, Cornell University