Emergence of quantum critical charge and spin-state fluctuations near the pressure-induced Mott transition in MnO, FeO, CoO, and NiO
arXiv:2006.02406 · doi:10.1103/PhysRevB.101.245144
Abstract
We perform a comprehensive theoretical study of the pressure-induced evolution of the electronic structure, magnetic state, and phase stability of the late transition metal monoxides MnO, FeO, CoO, and NiO using a fully charge self-consistent DFT+dynamical mean-field theory method. Our results reveal that the pressure-induced Mott insulator-to-metal phase transition in MnO-NiO is accompanied by a simultaneous collapse of local magnetic moments and lattice volume, implying a complex interplay between chemical bonding and electronic correlations. We compute the pressure-induced evolution of relative weights of the different valence states and spin-state configurations. Employing the concept of fluctuating valence in a correlated solid, we demonstrate that in MnO, FeO, and CoO a Mott insulator-metal transition and collapse of the local moments is accompanied by a sharp crossover of the spin-state and valence configurations. Our microscopic explanation of the magnetic collapse differs from the accepted picture and points out a remarkable dynamical coexistence (frustration) of the high-, intermediate-, and low-spin states. In particular, in MnO, the magnetic collapse is found to be driven by the appearance of the intermediate-spin state (IS), competing with the low-spin (LS) state; in FeO, we observe a conventional high-spin to low-spin (HS-LS) crossover. Most interestingly, in CoO, we obtain a remarkable (dynamical) coexistence of the HS and LS states, i.e., a HS-LS frustration, up to high pressure. Our results demonstrate the importance of quantum fluctuations of the valence and spin states for the understanding of quantum criticality of the Mott transitions.
11 pages, 10 figures
References in corpus (34)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Continuous-time Monte Carlo methods for quantum impurity models
- Quantum Criticality in Heavy Fermion Metals
- Strong electronic correlations from Hund's coupling
- Strong Correlations and Magnetic Frustration in the High Tc Iron Pnictides
- Quantum Monte Carlo Impurity Solver for Cluster DMFT and Electronic Structure Calculations in Adjustable Base
- Dynamical Mean-Field Theory within an Augmented Plane-Wave Framework: Assessing Electronic Correlations in the Iron Pnictide LaFeAsO
- What is the valence of a correlated solid? The double life of delta-plutonium
- Magnetism and Charge Dynamics in Iron Pnictides
- Origin of band gaps in 3d perovskite oxides
- Plane-wave based electronic structure calculations for correlated materials using dynamical mean-field theory and projected local orbitals
- Magnetic Moment Collapse-Driven Mott Transition in MnO
- Self-consistency over the charge-density in dynamical mean-field theory: a linear muffin-tin implementation and some physical implications
- NiO: Correlated Bandstructure of a Charge-Transfer Insulator
- A polymorphous band structure model of gapping in the anti-ferromagnetic and paramagnetic phases of the Mott insulators MnO, FeO, CoO, and NiO
- Quantum Valence Criticality as Origin of Unconventional Critical Phenomena
- Thermodynamic and spectral properties of compressed Ce calculated by the merger of the local density approximation and dynamical mean field theory
- Construction and solution of a Wannier-functions based Hamiltonian in the pseudopotential plane-wave framework for strongly correlated materials
- Orbital-selective Mott transitions: Heavy fermions and beyond
- Computing total energies in complex materials using charge self-consistent DFT+DMFT
- Approaching finite-temperature phase diagrams of strongly correlated materials: a case study for V2O3
- Structural relaxation due to electronic correlations in the paramagnetic insulator KCuF3
- Pressure-Driven Metal-Insulator Transition in Hematite from Dynamical Mean-Field Theory
- Electronic entanglement in late transition metal oxides
- Electronic correlations determine the phase stability of iron up to the melting temperature
- Method for calculating the electronic structure of correlated materials from a truly first-principles LDA+U scheme
- Metal-Insulator Transition and Lattice Instability of Paramagnetic V2O3
- Orbital Selective Pressure-Driven Metal-Insulator Transition in FeO from Dynamical Mean-Field Theory
- Magnetic Collapse and the Behavior of Transition Metal Oxides at High Pressure
- Metal-Insulator Transition and the Role of Electron Correlation in FeO2
- Realistic many-body models for Manganese Monoxide under pressure
- Consistent LDA'+DMFT -- an unambiguous way to avoid double counting problem: NiO test
- How chromium doping affects the correlated electronic structure of V2O3
- Charge disproportionation and site-selective local magnetic moments in the post-perovskite-type FeO under ultra-high pressures