Multiscale modeling for ferroelectric materials: a transition from the atomic level to phase-field modeling

被引:52
|
作者
Voelker, B. [1 ]
Marton, P. [2 ]
Elsaesser, C. [2 ]
Kamlah, M. [1 ]
机构
[1] Karlsruhe Inst Technol, Inst Mat Res 2, D-76344 Eggenstein Leopoldshafen, Germany
[2] Fraunhofer Inst Mech Mat IWM, D-79108 Freiburg, Germany
关键词
Ferroelectric materials; Multiscale modeling; First-Principles calculations; Phase-field modeling; Parameter identification; GROUND-STATE PROPERTIES; CONTINUUM THERMODYNAMICS; TETRAGONAL PBTIO3; PEROVSKITE; 1ST-PRINCIPLES; 4D-TRANSITION; EVOLUTION; METALS;
D O I
10.1007/s00161-011-0188-7
中图分类号
O414.1 [热力学];
学科分类号
摘要
To link the atomic level and the mesoscale within a knowledge-based multiscale modeling approach for ferroelectric materials, a method is suggested to transfer results from first-principles calculations into a phase-field model. DFT calculations and atomistic simulations are applied and provide a set of intrinsic and extrinsic material properties for PbTiO3 and tetragonal Pb(Zr0.5Ti0.5)O-3. The Helmholtz free energy of the phase-field model that contains all crystallographic and domain wall information is discussed in detail, and a sensitivity analysis is performed to identify the coefficients of the energy function. Then, a method is developed to adjust the coefficients of the Helmholtz free energy solely based on results from first-principles calculations. Full sets of adjusted energy coefficients for PbTiO3 and Pb(Zr0.5Ti0.5)O-3 are presented and discussed, as well the limits of the suggested adjustment method.
引用
收藏
页码:435 / 451
页数:17
相关论文
共 50 条
  • [1] Multiscale modeling for ferroelectric materials: a transition from the atomic level to phase-field modeling
    B. Völker
    P. Marton
    C. Elsässer
    M. Kamlah
    [J]. Continuum Mechanics and Thermodynamics, 2011, 23 : 435 - 451
  • [2] Phase-Field Modeling of Fracture in Ferroelectric Materials
    Amir Abdollahi
    Irene Arias
    [J]. Archives of Computational Methods in Engineering, 2015, 22 : 153 - 181
  • [3] Phase-Field Modeling of Fracture in Ferroelectric Materials
    Abdollahi, Amir
    Arias, Irene
    [J]. ARCHIVES OF COMPUTATIONAL METHODS IN ENGINEERING, 2015, 22 (02) : 153 - 181
  • [4] Multiscale modeling for ferroelectric materials: identification of the phase-field model's free energy for PZT from atomistic simulations
    Voelker, Benjamin
    Landis, Chad M.
    Kamlah, Marc
    [J]. SMART MATERIALS AND STRUCTURES, 2012, 21 (03)
  • [5] Phase-field modeling of domain evolution in ferroelectric materials in the presence of defects
    Fedeli, Patrick
    Kamlah, Marc
    Frangi, Attilio
    [J]. SMART MATERIALS AND STRUCTURES, 2019, 28 (03)
  • [6] Multiscale Phase-Field Modeling of Fracture in Nanostructures
    Jahanshahi, Mohsen
    Khoei, Amir Reza
    Asadollahzadeh, Niloofar
    Aldakheel, Fadi
    [J]. JOURNAL OF MULTISCALE MODELLING, 2023, 14 (04)
  • [7] Phase-Field Modeling Fracture in Anisotropic Materials
    Li, Haifeng
    Wang, Wei
    Cao, Yajun
    Liu, Shifan
    [J]. ADVANCES IN CIVIL ENGINEERING, 2021, 2021
  • [8] Phase-field modeling for polarization evolution in ferroelectric materials via an isogeometric collocation method
    Fedeli, P.
    Frangi, A.
    Auricchio, F.
    Reali, A.
    [J]. COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2019, 351 : 789 - 807
  • [9] A comparative study of the phase-field approach in modeling the frequency-dependent characteristics of ferroelectric materials
    Liu, Ning
    Su, Yu
    [J]. ACTA MECHANICA, 2016, 227 (09) : 2671 - 2682
  • [10] A comparative study of the phase-field approach in modeling the frequency-dependent characteristics of ferroelectric materials
    Ning Liu
    Yu Su
    [J]. Acta Mechanica, 2016, 227 : 2671 - 2682