First-principles modeling of ferroelectric capacitors via constrained-D calculations
arXiv:0908.1813 · doi:10.1103/PhysRevB.80.224110
Abstract
First-principles modeling of ferroelectric capacitors presents several technical challenges, due to the coexistence of metallic electrodes, long-range electrostatic forces and short-range interface chemistry. Here we show how these aspects can be efficiently and accurately rationalized by using a finite-field density-functional theory formalism in which the fundamental electrical variable is the displacement field D. By performing calculations on model Pt/BaTiO3/Pt and Au/BaZrO3/Au capacitors we demonstrate how the interface-specific and bulk-specific properties can be identified and rigorously separated. Then, we show how the electrical properties of capacitors of arbitrary thickness and geometry (symmetric or asymmetric) can be readily reconstructed by using such information. Finally, we show how useful observables such as polarization and dielectric, piezoelectric and electrostrictive coefficients are easily evaluated as a byproduct of the above procedure. We apply this methodology to elucidate the relationship between chemical bonding, Schottky barriers and ferroelectric polarization at simple-metal/oxide interfaces. We find that BO2-electrode interfaces behave analogously to a layer of linear dielectric put in series with a bulk-like perovskite film, while a significant non-linear effect occurs at AO-electrode interfaces.
25 pages, 18 figures
References in corpus (1)
Cited by in corpus (26)
- Maximally localized Wannier functions: Theory and applications
- Structure and properties of functional oxide thin films: Insights from electronic-structure calculations
- Band alignment at metal/ferroelectric interfaces: insights and artifacts from first principles
- Equilibrium and Stability of Polarization in Ultrathin Ferroelectric Films with Ionic Surface Compensation
- Coupling and Electrical Control of Structural, Orbital and Magnetic Orders in Perovskites
- Computing the dielectric constant of liquid water at constant dielectric displacement
- Finite Field Methods for the Supercell Modelling of Charged Insulator-Electrolyte Interfaces
- Tuning the two-dimensional electron gas at the LaAlO3/SrTiO3(001) interface by metallic contacts
- Interface enhancement of ferroelectricity in CaTiO/BaTiO superlattices
- Electrical properties of improper ferroelectrics from first principles
- Electrostatic engineering of strained ferroelectric perovskites from first-principles
- Effects of ferroelectric polarization on surface phase diagram: an evolutionary algorithm study of the BaTiO(001) surface
- First-principles study of competing ferroelectric and antiferroelectric instabilities in BaTiO3/BaO superlattices
- Finite electric displacement simulations of polar ionic solid-electrolyte interfaces: Application to NaCl(111)/aqueous NaCl solution
- Chiral Polarization Textures Induced by the Flexoelectric Effect in Ferroelectric Nanocylinders
- Cyclic Ferroelectric Switching and Quantized Charge Transport in CuInPS
- Mapping the energy surface of PbTiO3 in multidimensional electric-displacement space
- Electrostriction coefficient of ferroelectric materials from ab initio computation
- Analytical description of the size effect on pyroelectric and electrocaloric properties of ferroelectric nanoparticles
- First-Principles Modeling of Pt/LaAlO3/SrTiO3 Capacitors Under an External Bias Potential
- First-principles study of high-field piezoelectricity in tetragonal PbTiO3
- Computing the Helmholtz Capacitance of Charged Insulator-Electrolyte Interfaces from the Supercell Polarization
- Modeling functional piezoelectricity in perovskite superlattices with competing instabilities
- Convert widespread paraelectric perovskite to ferroelectrics
- Lattice screening of the polar catastrophe and hidden in-plane polarization in KNbO/BaTiO interfaces
- First-Principles Bulk-Layer Model for Dielectric and Piezoelectric Responses in Superlattices