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Phys. Rev. B 79, 144124 (2009) [8 pages]

Ideal barriers to polarization reversal and domain-wall motion in strained ferroelectric thin films

S. P. Beckman, Xinjie Wang, Karin M. Rabe, and David Vanderbilt
Department of Physics and Astronomy, Rutgers University, Piscataway, New Jersey 08854-8019, USA
Received 2 December 2008; revised 27 February 2009; published 30 April 2009

The ideal intrinsic barriers to domain switching in c-phase PbTiO3 (PTO), PbZrO3 (PZO), and PbZr1−xTixO3 (PZT) are investigated via first-principles computational methods. The effects of epitaxial strain on the atomic structure, ferroelectric response, barrier to coherent domain reversal, domain-wall energy, and barrier to domain-wall translation are studied. It is found that PTO has a larger polarization, but smaller energy barrier to domain reversal, than PZO. Consequentially the idealized coercive field is over two times smaller in PTO than PZO. The Ti-O bond length is more sensitive to strain than the other bonds in the crystals. This results in the polarization and domain-wall energy in PTO having greater sensitivity to strain than in PZO. Two ordered phases of PZT are considered, the rocksalt structure and a (100) PTO/PZO superlattice. In these simple structures we find that the ferroelectric properties do not obey Vergard's law, but instead can be approximated as an average over individual five-atom unit cells.

©2009 The American Physical Society

URL: http://link.aps.org/doi/10.1103/PhysRevB.79.144124
DOI: 10.1103/PhysRevB.79.144124
PACS: 77.80.Fm; 77.84.Dy; 77.55.+f
  • 77.80.Fm
    Ferroelectric switching phenomena
  • 77.84.Dy
    Dielectric, piezoelectric, and ferroelectric niobates, titanates, tantalates, PZT ceramics, etc
  • 77.55.+f
    Dielectric thin films
  • YEAR: 2009
KEYWORDS: ab initio calculations, dielectric polarisation, electric domain walls, epitaxial layers, ferroelectric coercive field, ferroelectric switching, ferroelectric thin films, lead compounds, superlattices

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