Ab-initio calculations for the beta-tin diamond transition in Silicon: comparing theories with experiments
arXiv:1011.2508 · doi:10.1103/PhysRevB.83.075119
Abstract
We investigate the pressure-induced metal-insulator transition from diamond to beta-tin in bulk Silicon, using quantum Monte Carlo (QMC) and density functional theory (DFT) approaches. We show that it is possible to efficiently describe many-body effects, using a variational wave function with an optimized Jastrow factor and a Slater determinant. Variational results are obtained with a small computational cost and are further improved by performing diffusion Monte Carlo calculations and an explicit optimization of molecular orbitals in the determinant. Finite temperature corrections and zero point motion effects are included by calculating phonon dispersions in both phases at the DFT level. Our results indicate that the theoretical QMC (DFT) transition pressure is significantly larger (smaller) than the accepted experimental value. We discuss the limitation of DFT approaches due to the choice of the exchange and correlation functionals and the difficulty to determine consistent pseudopotentials within the QMC framework, a limitation that may significantly affect the accuracy of the technique.
13 pages, 9 figures, submitted to the Physical Review B on October 25
References in corpus (10)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Beyond the locality approximation in the standard diffusion Monte Carlo method
- Smooth relativistic Hartree-Fock pseudopotentials for H to Ba and Lu to Hg
- Finite-size correction in many-body electronic structure calculations
- Phase transformation in Si from semiconducting diamond to metallic beta-Sn phase in QMC and DFT under hydrostatic and anisotropic stress
- Quantum Monte Carlo calculations of structural properties of FeO under pressure
- Molecular hydrogen adsorbed on benzene: insights from a quantum Monte Carlo study
- Systematically convergent method for accurate total energy calculations with localized atomic orbitals
- Mott transition in bosonic systems: Insights from the variational approach
- First-Principles Study of a Positron Immersed in an Electron Gas
Cited by in corpus (17)
- Strong electronic correlation in the Hydrogen chain: a variational Monte Carlo study
- Ab-initio molecular dynamics simulation of liquid water by Quantum Monte Carlo
- TurboRVB: a many-body toolkit for {\it ab initio} electronic simulations by quantum Monte Carlo
- An optimized interatomic potential for silicon and its application to thermal stability of silicene
- Quantum Monte Carlo calculations in solids with downfolded Hamiltonians
- Electronic Origin of the Volume Collapse in Cerium
- Competing collinear magnetic structures in superconducting FeSe by first principles quantum Monte Carlo calculations
- Frozen-orbital and downfolding calculations with auxiliary-field quantum Monte Carlo
- Accelerated ab-initio Molecular Dynamics: probing the weak dispersive forces in dense liquid hydrogen
- Auxiliary-field quantum Monte Carlo calculations with multiple-projector pseudopotentials
- Atomic forces by quantum Monte Carlo: application to phonon dispersion calculation
- Exact special twist method for quantum Monte Carlo simulations
- Prediction of stable Li-Sn compounds: boosting ab initio searches with neural network potentials
- Geminal embedding scheme for optimal atomic basis set construction in correlated calculations
- Improper s-wave symmetry for the electronic pairing in iron-based superconductors by first-principles calculation
- Finite-size correction in many-body electronic structure calculations of magnetic systems
- Electron correlation effects and spin-liquid state in the Herbertsmithite Kagome lattice