Phase-field simulation and design of a ferroelectric nano-generator

被引:1
|
作者
Krauss, M. [1 ]
Muench, I. [1 ]
Landis, C. M. [2 ]
Wagner, W. [1 ]
机构
[1] Karlsruhe Inst Technol KIT, Inst Struct Anal, D-76133 Karlsruhe, Germany
[2] Univ Texas Austin, Austin, TX 78712 USA
关键词
Phase-field modeling; ferroelectricity; nano-generator; epitaxial strain; finite element method; energy-harvesting; THIN-FILMS; TRANSITIONS; STRAIN; DIAGRAM;
D O I
10.1117/12.880493
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
We study the behavior of ferroelectric material (BaTiO3) for the design of a nano-generator to convert mechanical into electrical energy. The investigations consider an electro-mechanical phase-field model with polarization as state variable. This widely accepted model has its origins in the work of(1-3) and is fully developed by Landis and coworkers.(4, 5) We use a finite element model to simulate tetragonal regions of ferroelectric material sputtered on substrate. Different geometries as well as various mechanical and electrical boundary conditions are considered. The model parameters are normalized to achieve better computational conditions within the stiffness matrix. The major objective of this contribution is the fundamental understanding of domain switching caused by a cyclic electrical field. The corresponding hysteresis loops of the overall polarization cannot be achieved by using a two-dimensional model because the domain topologies evolve in three dimensions. The three-dimensional nature of the domain structure evolution is even true for flat regions or thin films.(6) We show some examples of three-dimensional domain topologies, which are able to break energetically unfavorable symmetries. Finally, the computational model of a tetragonal nano-generator with dimensions 10 x 60 x 10 nm is presented. The specific ratio of height to width and the mounting on substrate is essential for its performance and principle of energy harvesting. We discuss the challenges and scopes of such a system.
引用
收藏
页数:12
相关论文
共 50 条
  • [21] Preparation and performance of PVDF/PPy flexible DC nano-generator
    Li, Jinhui
    Liu, Xiaodong
    Jin, Xin
    Shi, Shanjing
    Wang, Wenyu
    Fuhe Cailiao Xuebao/Acta Materiae Compositae Sinica, 2024, 41 (06): : 2980 - 2990
  • [22] A design for preparation of textured piezoelectric ceramics based on the phase-field simulation
    Zhang, Yongmei
    Liu, Liangliang
    JOURNAL OF ADVANCED DIELECTRICS, 2022, 12 (05)
  • [23] An accelerated algorithm on the phase-field simulation
    School of Electronics and Information, Northwestern Polytechnical University, No. 127, West Youyi Road, Xi'an, China
    不详
    不详
    ICIC Express Lett., 1 (203-209):
  • [24] Phase-field simulation of grain growth
    Suwa, Y., 1600, Nippon Steel Corp.
  • [25] Phase-Field Simulation of Dendritic Growth
    Zhang Yu-tuo
    Li Dong-hui
    Wang Cheng-zhi
    JOURNAL OF IRON AND STEEL RESEARCH INTERNATIONAL, 2010, 17 : 1 - 3
  • [26] The grain-size-dependent behaviors of nano-grained ferroelectric polycrystals: a phase-field study
    Liu, Ning
    Su, Yu
    ACTA MECHANICA, 2014, 225 (4-5) : 1335 - 1345
  • [27] The grain-size-dependent behaviors of nano-grained ferroelectric polycrystals: a phase-field study
    Ning Liu
    Yu Su
    Acta Mechanica, 2014, 225 : 1335 - 1345
  • [28] Computational design of microstructures of textured ferroelectric ceramics by phase field simulation
    Zhang, Yongmei
    Liu, Liangliang
    COMPUTATIONAL MATERIALS SCIENCE, 2019, 159 : 24 - 31
  • [29] The phase-field method in optimal design
    Bourdin, Blaise
    Chambolle, Antonin
    IUTAM SYMPOSIUM ON TOPOLOGICAL DESIGN OPTIMIZATION OF STRUCTURES, MACHINES AND MATERIALS: STATUS AND PERSPECTIVES, 2006, 137 : 207 - +
  • [30] Design of super-elastic freestanding ferroelectric thin films guided by phase-field simulations
    Guo, Changqing
    Huang, Houbing
    MICROSTRUCTURES, 2022, 2 (04):