TY - JOUR
T1 - Coupled magnetostructural continuum model for multiferroic BiFeO3
AU - Mangeri, John
AU - Rodrigues, Davi
AU - Graf, Monica
AU - Biswas, Sudipta
AU - Heinonen, Olle
AU - Íñiguez, Jorge
N1 - Funding Information:
The authors thank Natalya Fedorova for valuable input. J.M. received funding from the European Union's Horizon 2020 research and innovation programme under the Marie Skłodowska-Curie Grant Agreement No. SCALES-897614. Work by O.H. was funded by the US Department of Energy, Basic Energy Sciences Division of Materials Sciences and Engineering. D.R.R. acknowledges funding from the Ministerio dell'Universit e della Ricerca, Decreto Ministeriale No. 1062 (PON Ricerca e Innovazione). We also acknowledge the support of the Luxembourg National Research Fund (FNR) through Grants No. INTER/RCUK/18/12601980 (M.G.) and No. C21/MS/15799044/FERRODYNAMICS (J.Í.).
Publisher Copyright:
© 2023 American Physical Society.
PY - 2023/9/5
Y1 - 2023/9/5
N2 - A continuum approach to study magnetoelectric multiferroic BiFeO3 (BFO) is proposed. Our modeling effort marries the ferroelectric (FE) phase field method and micromagnetic simulations to describe the entire multiferroic order parameter sector (polarization, oxygen antiphase tilts, strain, and magnetism) self-consistently on the same time- and length scale. In this paper, we discuss our choice of FE and magnetic energy terms and demonstrate benchmarks against known behavior. We parametrize the lowest order couplings of the structural distortions against previous predictions from density functional theory calculations giving access to simulations of the FE domain wall (DW) topology. This allows us to estimate the energetic hierarchy and thicknesses of the numerous structural DWs. We then extend the model to the canted antiferromagnetic order and demonstrate how the FE domain boundaries influence the resulting magnetic DWs. We also highlight some capabilities of this model by providing two examples relevant for applications. We demonstrate spin-wave transmission through the multiferroic domain boundaries which identify rectification in qualitative agreement with recent experimental observations. As a second example of application, we model fully dynamical magnetoelectric switching, where we find a sensitivity on the Gilbert damping with respect to switching pathways. We envision that this modeling effort will set the basis for further work on properties of arbitrary 3D nanostructures of BFO (and related multiferroics) at the mesoscale.
AB - A continuum approach to study magnetoelectric multiferroic BiFeO3 (BFO) is proposed. Our modeling effort marries the ferroelectric (FE) phase field method and micromagnetic simulations to describe the entire multiferroic order parameter sector (polarization, oxygen antiphase tilts, strain, and magnetism) self-consistently on the same time- and length scale. In this paper, we discuss our choice of FE and magnetic energy terms and demonstrate benchmarks against known behavior. We parametrize the lowest order couplings of the structural distortions against previous predictions from density functional theory calculations giving access to simulations of the FE domain wall (DW) topology. This allows us to estimate the energetic hierarchy and thicknesses of the numerous structural DWs. We then extend the model to the canted antiferromagnetic order and demonstrate how the FE domain boundaries influence the resulting magnetic DWs. We also highlight some capabilities of this model by providing two examples relevant for applications. We demonstrate spin-wave transmission through the multiferroic domain boundaries which identify rectification in qualitative agreement with recent experimental observations. As a second example of application, we model fully dynamical magnetoelectric switching, where we find a sensitivity on the Gilbert damping with respect to switching pathways. We envision that this modeling effort will set the basis for further work on properties of arbitrary 3D nanostructures of BFO (and related multiferroics) at the mesoscale.
UR - https://www.scopus.com/pages/publications/85172680278
UR - https://www.mendeley.com/catalogue/6380152d-5e93-3641-b43d-481c36edf663/
U2 - 10.1103/PhysRevB.108.094101
DO - 10.1103/PhysRevB.108.094101
M3 - Article
AN - SCOPUS:85172680278
SN - 2469-9950
VL - 108
JO - Physical Review B
JF - Physical Review B
IS - 9
M1 - 094101
ER -