Multi-orbital two-particle self-consistent approach -- strengths and limitations
arXiv:2410.00962 · doi:10.21468/SciPostPhys.19.1.026
Abstract
Extending many-body numerical techniques which are powerful in the context of simple model calculations to the realm of realistic material simulations can be a challenging task. Realistic systems often involve multiple active orbitals, which increases the complexity and numerical cost because of the large local Hilbert space and the large number of interaction terms or sign-changing off-diagonal Green's functions. The two-particle self-consistent approach (TPSC) is one such many-body numerical technique, for which multi-orbital extensions have proven to be involved due to the substantially more complex structure of the local interaction tensor. In this paper we extend earlier multi-orbital generalizations of TPSC by setting up two different variants of a fully self-consistent theory for TPSC in multi-orbital systems. We first investigate the strengths and limitations of the approach analytically and then benchmark both variants against dynamical mean-field theory (DMFT) and D-TRILEX results. We find that the exact behavior of the system can be faithfully reproduced in the weak-coupling regime, while at stronger couplings the performance of the two TPSC variants strongly depends on details of the system.
18 pages, 5 figures
References in corpus (69)
- The density-matrix renormalization group in the age of matrix product states
- Quantum Spin Liquids
- High-temperature superconductivity in iron-based materials
- Quantum Spin Liquids
- Strong electronic correlations from Hund's coupling
- Matrix Product States and Projected Entangled Pair States: Concepts, Symmetries, and Theorems
- Kinetic frustration and the nature of the magnetic and paramagnetic states in iron pnictides and iron chalcogenides
- Functional renormalization group approach to correlated fermion systems
- Coherence-incoherence crossover in the normal state of iron-oxypnictides and importance of the Hund's rule coupling
- TRIQS: A Toolbox for Research on Interacting Quantum Systems
- Diagrammatic routes to nonlocal correlations beyond dynamical mean field theory
- Recent advances in iron-based superconductors toward applications
- Dynamical vertex approximation - a step beyond dynamical mean field theory
- Quantum Monte Carlo method using phase-free random walks with Slater determinants
- Absence of superconductivity in the pure two-dimensional Hubbard model
- Cluster Dynamical Mean Field Theory of the Mott Transition
- Spin freezing transition and non-Fermi-liquid self-energy in a 3-orbital model
- The coherence-incoherence crossover and the mass-renormalization puzzles in Sr2RuO4
- Pseudogap and high-temperature superconductivity from weak to strong coupling. Towards quantitative theory
- Tracking the Footprints of Spin Fluctuations: A MultiMethod, MultiMessenger Study of the Two-Dimensional Hubbard Model
- Backflow Transformations via Neural Networks for Quantum Many-Body Wave-Functions
- The temperature-flow renormalization group and the competition between superconductivity and ferromagnetism
- Compressing Green's function using intermediate representation between imaginary-time and real-frequency domains
- w2dynamics: Local one- and two-particle quantities from dynamical mean field theory
- Diagrammatic Monte Carlo
- Mott physics and spin fluctuations: a unified framework
- Dual boson approach to collective excitations in correlated fermionic systems
- From infinite to two dimensions through the functional renormalization group
- Controlling Feynman diagrammatic expansions: physical nature of the pseudo gap in the two-dimensional Hubbard model
- Fermi-liquid, non-Fermi-liquid, and Mott phases in iron pnictides and cuprates
- Sparse sampling approach to efficient ab initio calculations at finite temperature
- Fermionic Wave Functions from Neural-Network Constrained Hidden States
- Efficient treatment of two-particle vertices in dynamical mean-field theory
- Consistent partial bosonization of the extended Hubbard model
- Antiferromagnetic fluctuations and d-wave superconductivity in electron-doped high-temperature superconductors
- Mott physics and collective modes: an atomic approximation of the four-particle irreducible functional
- Order-disorder Peierls instability in the kagome metal (Cs,Rb)VSb
- sparse-ir: optimal compression and sparse sampling of many-body propagators
- Electronic correlations and Hund's coupling effects in SrMoO revealed by photoemission spectroscopy
- Microscopic nature of correlations in multi-orbital AFe2As2 (A=K, Rb, Cs): Hund's coupling versus Coulomb repulsion
- Hund's induced Fermi-liquid instabilities and enhanced quasiparticle interactions
- Algorithmic Matsubara Integration for Hubbard-like models
- Emergent Bloch Excitations in Mott Matter
- Antiferromagnetism in the Hubbard model on the honeycomb lattice: a Two-Particle Self-Consistent study
- Exciton Mott transition revisited
- Self-consistent ladder DA approach
- Development of a two-particle self-consistent method for multi-orbital systems and its application to unconventional superconductors
- New mechanism and exact theory of superconductivity from strong repulsive interaction
- Explaining the pseudogap through damping and antidamping on the Fermi surface by imaginary spin scattering
- Effect of non-local correlations on the electronic structure of LiFeAs
- Conditions for magnetically induced singlet d-wave superconductivity on the square lattice
- Superconductivity in correlated BEDT-TTF molecular conductors: critical temperatures and gap symmetries
- Non-local correlations in Iron Pnictides and Chalcogenides
- Efficient vertex parametrization for the constrained functional renormalization group for effective low-energy interactions in multiband systems
- Evidence of hot and cold spots on the Fermi surface of LiFeAs
- Nonequilibrium Two-Particle Self-Consistent Approach
- Two-Particle Self-Consistent method for the multi-orbital Hubbard model
- Fluctuations analysis of the spin susceptibility: Néel ordering revisited in dynamical mean field theory
- Charge orders in organic charge-transfer salts
- Nonlocal corrections to dynamical mean-field theory from the two-particle self-consistent method
- An Improved Two-Particle Self-Consistent Approach
- Improved effective vertices in the multi-orbital Two-Particle Self-Consistent method from Dynamical Mean-Field Theory
- Two-Particle Self-Consistent Approach to Anisotropic Superconductivity
- Dynamical Mean Field Theory extension to the nonequilibrium Two-Particle Self-Consistent approach
- Two-Particle-Self-Consistent Approach for the Hubbard Model
- Disorder effects on hot spots in electron-doped cuprates
- Spin Hall conductivity in the Kane-Mele-Hubbard model at finite temperature
- Spin correlations in the bilayer Hubbard model with perpendicular electric field
- Two-particle self-consistent approach for broken symmetry phases