4.7 Article

Translational Covariance of Flexoelectricity at Ferroelectric Domain Walls

Journal

PHYSICAL REVIEW X
Volume 12, Issue 3, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevX.12.031002

Keywords

-

Funding

  1. Israel Science Foundation [1814/14, 2143/14]
  2. Ministerio de Ciencia e Innovacion (MICINN-Spain) [PID2019108573 GB-C22]
  3. Severo Ochoa FUNFUTURE center of excellence [CEX2019-000917-S]
  4. Generalitat de Catalunya [2017 SGR1506]
  5. European Research Council (ERC) under the European Union [724529]
  6. European Research Council (ERC) [724529] Funding Source: European Research Council (ERC)

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Macroscopic descriptions of ferroelectrics have limitations in terms of predicting materials parameters from microscopic structures. This study establishes a two-way mapping between spatially inhomogeneous fields and discrete lattice modes, enabling a natural treatment of gradient couplings in the macroscopic regime. The findings reveal a generalized translational covariance in the continuum description of inhomogeneous ferroelectric structures, canceling out the inherent arbitrariness in flexoelectric and polarization gradient coefficients.
Macroscopic descriptions of ferroelectrics have an obvious appeal in terms of efficiency and physical intuition. Their predictive power, however, has often been thwarted by the lack of a systematic procedure to extract the relevant materials parameters from the microscopics. Here we address this limitation by establishing an unambiguous two-way mapping between spatially inhomogeneous fields and discrete lattice modes. This yields a natural treatment of gradient couplings in the macroscopic regime via a longwavelength expansion of the crystal Hamiltonian. Our analysis reveals an inherent arbitrariness in both the flexoelectric and polarization gradient coefficients, which we ascribe to a translational freedom in the definition of the polar distortion pattern. Remarkably, such arbitrariness cancels out in all physically measurable properties (relaxed atomic structure and energetics) derived from the model, pointing to a generalized translational covariance in the continuum description of inhomogeneous ferroelectric structures. We demonstrate our claims with extensive numerical tests on 180?? domain walls in common ferroelectric perovskites, finding excellent agreement between the continuum model and direct firstprinciples calculations.

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