English

Electric Polarization from Nonpolar Phonons

Materials Science 2025-12-02 v1 Computational Physics

Abstract

Born effective charge (BEC), a fundamental quantity in lattice dynamics and ferroelectric theory, provides a quantitative measure of linear polarization response to ionic displacements. However, it does not account for higher-order effects, which can play a significant role in certain materials, such as fluorite HfO2_2. In this letter, we extend the BEC framework by introducing the concept of second-order dynamical charge and mode effective charge. Using first-principles calculations, we demonstrate that specific combinations of nonpolar phonon modes in many oxides can induce substantial second-order polarizations, reaching magnitudes comparable to those of intrinsically polar modes. Through a symmetry-based analysis of the charge density, we elucidate the microscopic origin of these effects, tracing them to variations in bond covalency and local electronic rearrangements. We also demonstrate large second-order mode effective charge in well-studied perovskites such as SrTiO3_3, highlighting the generality of these phenomena. Our results reveal a previously unrecognized mechanism that drives polarization in crystalline solids, offering new insights into the design principles of next-generation ferroelectric, piezoelectric and multifunctional materials.

Keywords

Cite

@article{arxiv.2512.00628,
  title  = {Electric Polarization from Nonpolar Phonons},
  author = {Seongjoo Jung and Turan Birol},
  journal= {arXiv preprint arXiv:2512.00628},
  year   = {2025}
}
R2 v1 2026-07-01T08:01:06.307Z