English

Ferro-ionic States and Domains Morphology in Hf$_x$Zr$_{1-x}$O$_2$ Nanoparticles

Materials Science 2025-01-22 v1

Abstract

Unique polar properties of nanoscale hafnia-zirconia oxides (Hfx_xZr1x_{1-x}O2_2) are of great interest for condensed matter physics, nanophysics and advanced applications. These properties are connected (at least partially) to the ionic-electronic and electrochemical phenomena at the hafnia surface, interfaces and/or internal grain boundaries. Here we calculated the phase diagrams, dielectric permittivity, spontaneous polar and antipolar ordering, and domain structure morphology in Hfx_xZr1x_{1-x}O2_2 nanoparticles covered by ionic-electronic charge, originated from the surface electrochemical adsorption. We revealed that the ferro-ionic coupling supports the polar long-range order in the nanoscale Hfx_xZr1x_{1-x}O2_2, induces and/or enlarges the stability region of the labyrinthine domains towards smaller sizes and smaller environmental dielectric constant at low concentrations of the surface ions, and causes the transition to the single-domain ferro-ionic state at high concentrations of the surface ions. We predict that the labyrinthine domain states, being multiple-degenerated, may significantly affect the emergence of the negative differential capacitance state in the nanograined/nanocrystalline Hfx_xZr1x_{1-x}O2_2 films.

Keywords

Cite

@article{arxiv.2410.04476,
  title  = {Ferro-ionic States and Domains Morphology in Hf$_x$Zr$_{1-x}$O$_2$ Nanoparticles},
  author = {Eugene A. Eliseev and Sergei V. Kalinin and Anna N. Morozovska},
  journal= {arXiv preprint arXiv:2410.04476},
  year   = {2025}
}

Comments

28 pages, 7 figures and Appendixes, Invited by the Journal of Applied Physics to the "Special Topic on Ferroic Materials, Domains, and Domain Walls: Bridging Fundamentals with Next-Generation Technology"