Competing collinear magnetic structures in superconducting FeSe by first principles quantum Monte Carlo calculations
arXiv:1602.02054 · doi:10.1103/PhysRevB.94.035108
Abstract
Resolving the interplay between magnetic interactions and structural properties in strongly correlated materials through a quantitatively accurate approach has been a major challenge in condensed matter physics. Here we apply highly accurate first principles quantum Monte Carlo (QMC) techniques to obtain structural and magnetic properties of the iron selenide (FeSe) superconductor under pressure. Where comparable, the computed properties are very close to the experimental values. Of potential ordered magnetic configurations, collinear spin configurations are the most energetically favorable over the explored pressure range. They become nearly degenerate in energy with bicollinear spin orderings at around 7 GPa, when the experimental critical temperature is the highest. On the other hand, ferromagnetic, checkerboard, and staggered dimer configurations become relatively higher in energy as the pressure increases. The behavior under pressure is explained by an accurate analysis of the charge compressibility and the orbital occupation as described by the QMC many-body wave function, which reveals how spin, charge and orbital degrees of freedom are strongly coupled in this compound. This remarkable pressure evolution suggests that stripe-like magnetic fluctuations may be responsible for the enhanced in FeSe and that higher T is associated with nearness to a crossover between collinear and bicollinear ordering.
References in corpus (22)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Superconductivity at 36 K in beta-Fe1.01Se with the compression of the interlayer separation under pressure
- Strong electronic correlations from Hund's coupling
- Superconductivity at 27 K in tetragonal FeSe under high pressure
- Magnetism and its microscopic origin in iron-based high-temperature superconductors
- Why Does Undoped FeSe Become A High Tc Superconductor Under Pressure?
- Magnetism and Charge Dynamics in Iron Pnictides
- Theoretical evidence for strong correlations and incoherent metallic state in FeSe
- Weak binding between two aromatic rings: feeling the van der Waals attraction by quantum Monte Carlo methods
- Lifting of xz/yz orbital degeneracy at the structural transition in detwinned FeSe
- Hund's coupling key role in multi-orbital correlations
- Finite-size correction in many-body electronic structure calculations
- Strong spin fluctuations in -FeSe observed by neutron spectroscopy
- Many-body effects in iron pnictides and chalcogenides -- non-local vs dynamic origin of effective masses
- Pressure-Induced Effects on the Structure of the FeSe Superconductor
- Antiferromagnetic ground state with pair-checkboard order in FeSe
- Quantum oscillations and upper critical magnetic field of the iron-based superconductor FeSe
- Wave functions for quantum Monte Carlo calculations in solids: Orbitals from density functional theory with hybrid exchange-correlation functionals
- Electronic Origin of the Volume Collapse in Cerium
- Glide-Plane Symmetry and Superconducting Gap Structure of Iron-Based Superconductors
- Strain effects in monolayer Iron-Chalcogenide superconductors
- First-principles theory of electron-spin fluctuation coupling and superconducting instabilities in iron selenide
Cited by in corpus (17)
- Nematicity, magnetism and superconductivity in FeSe
- TurboRVB: a many-body toolkit for {\it ab initio} electronic simulations by quantum Monte Carlo
- From real materials to model Hamiltonians with density matrix downfolding
- Systematic DFT+U and Quantum Monte Carlo benchmark of magnetic two-dimensional (2D) CrX (X = I, Br, Cl, F)
- Correlation strength, Lifshitz transition and the emergence of a two- to three-dimensional crossover in FeSe under pressure
- Towards DMC accuracy across chemical space with scalable -QML
- Itinerant approach to magnetic neutron scattering of FeSe: effect of orbital selectivity
- Possible Nematic Spin Liquid in Spin- Antiferromagnetic System on the Square Lattice: Implication for the Nematic Paramagnetic State of FeSe
- Exact special twist method for quantum Monte Carlo simulations
- Magnitude of pseudopotential localization errors in fixed node diffusion quantum Monte Carlo
- Singular magnetic anisotropy in the nematic phase of FeSe
- The intrinsic ferromagnetism of two-dimensional (2D) MnO revisited: A many-body Quantum Monte Carlo and DFT+U study
- A Quantum Monte Carlo study of the structural, energetic, and magnetic properties of two-dimensional (2D) H and T phase VSe
- Prediction for the singlet-triplet excitation energy for the spinel MgTiO using first-principles diffusion Monte Carlo
- Ab-initio investigation of lattice distortions in response to van der Waals interactions in FeSe
- Quantum Monte Carlo study of the metal to insulator transition on a honeycomb lattice with 1/r interactions
- Identifying materials with charge-spin physics using charge-spin susceptibility computed from first principles