An empirical approach to measuring interface energies in mixed-phase bismuth ferrite
arXiv:2101.04883 · doi:10.1103/PhysRevMaterials.5.034404
Abstract
In complex oxide heteroepitaxy, strain engineering is a powerful tool to obtain phases in thin films that may be otherwise unstable in bulk. A successful example of this approach is mixed phase bismuth ferrite (BiFeO3) epitaxial thin films. The coexistence of a tetragonal-like (T-like) matrix and rhombohedral-like (R-like) striations provides an enhanced electromechanical response, along with other attractive functional behaviors. In this paper, we compare the energetics associated with two thickness dependent strain relaxation mechanisms in this system: domain walls arising from monoclinic distortion in the T-like phase, and the interphase boundary between the host T-like matrix and tilted R-like phases. Combining x-ray diffraction measurements with scanning probe microscopy, we extract quantitative values using an empirical energy balance approach. The domain wall and phase boundary energies are found to be 113 21 and 426 23 mJ.m, respectively. These numerical estimates will help us realize designer phase boundaries in multiferroics, which possess colossal responses to external stimuli, attractive for a diverse range of functional applications.
21 pages, 5 figures. Submitted to Phys. Rev. Mater
References in corpus (5)
- Weak ferromagnetism and magnetoelectric coupling in bismuth ferrite
- Large elasto-optic effect and reversible electrochromism in multiferroic BiFeO3
- Mechanical Switching of Nanoscale Multiferroic Phase Boundaries
- Domain and Phase De-strain - Formation of Ferroelastic Domain Structures
- Nanoscale structure and mechanism for enhanced electromechanical response of highly-strained BiFeO3 thin films