Non-separable frequency dependence of two-particle vertex in interacting fermion systems
arXiv:1708.03539 · doi:10.1103/PhysRevB.96.235110
Abstract
We derive functional flow equations for the two-particle vertex and the self-energy in interacting fermion systems which capture the full frequency dependence of both quantities. The equations are applied to the hole-doped two-dimensional Hubbard model as a prototype system with entangled magnetic, charge and pairing fluctuations. Each fluctuation channel acquires substantial dependencies on all three Matsubara frequencies, such that the frequency dependence of the vertex cannot be accurately represented by a channel sum with only one frequency variable in each term. At the temperatures we are able to access, the leading instabilities are mostly antiferromagnetic, with an incommensurate wave vector. However, at large doping, a divergence in the charge channel occurs at a finite frequency transfer, if the vertex flow is computed without self-energy feedback. This enigmatic instability was already observed in a calculation by Husemann et al. [Phys. Rev. B 85, 075121 (2012)], who used an approximate separable ansatz for the frequency dependence of the vertex. We identify a simple mechanism for this instability in terms of a random phase approximation for the charge channel with a frequency dependent effective magnetic interaction as input. In spite of the strong momentum and frequency dependence of the vertex, the self-energy has a Fermi liquid form. At the moderate interaction strength where our approach is applicable, we obtain a moderate reduction of the quasi-particle weight and a sizable decay rate with a pronounced momentum dependence. Nevertheless, the self-energy feedback into the vertex flow turns out to be crucial, as it suppresses the unphysical finite frequency charge instability.
References in corpus (7)
- Exact evolution equation for the effective potential
- A finite-frequency functional RG approach to the single impurity Anderson model
- Interaction flow method for many-fermion systems
- Pseudogap at hot spots in the two-dimensional Hubbard model at weak coupling
- Collective Charge Excitations of Strongly Correlated Electrons, Vertex Corrections and Gauge Invariance
- An alternative functional renormalization group approach to the single impurity Anderson model
- Phase Diagram of the Holstein-Hubbard Two-Leg Ladder
Cited by in corpus (37)
- The nonperturbative functional renormalization group and its applications
- Tracking the Footprints of Spin Fluctuations: A MultiMethod, MultiMessenger Study of the Two-Dimensional Hubbard Model
- Antiferromagnetic and d-wave pairing correlations in the strongly interacting two-dimensional Hubbard model from the functional renormalization group
- Why the critical temperature of high- cuprate superconductors is so low: The importance of the dynamical vertex structure
- Quantitative functional renormalization-group description of the two-dimensional Hubbard model
- On the limitations of cRPA downfolding
- Multiloop functional renormalization group for the two-dimensional Hubbard model: Loop convergence of the response functions
- Single boson exchange representation of the functional renormalization group for strongly interacting many-electron systems
- Reference results for the momentum space functional renormalization group
- Dynamical functional renormalization group computation of order parameters and critical temperatures in the two-dimensional Hubbard model
- SU(2) gauge theory of the pseudogap phase in the two-dimensional Hubbard model
- Parametrizations of local vertex corrections from weak to strong coupling: importance of the Hedin three-leg vertex
- Pseudogap opening in the two-dimensional Hubbard model: A functional renormalization group analysis
- TUFRG -- a scalable approach for truncated unity functional renormalization group in generic fermionic models
- Efficient vertex parametrization for the constrained functional renormalization group for effective low-energy interactions in multiband systems
- Truncated-Unity Parquet Equations: Application to the Repulsive Hubbard Model
- Functional renormalization-group calculation of the equation of state of one-dimensional nuclear matter inspired by the Hohenberg--Kohn theorem
- Electronic instabilities in Penrose quasi-crystals: competition, coexistence and collaboration of order
- Detecting phases in one-dimensional many-fermion systems with the functional renormalization group
- Functional renormalization group for fermion lattice models in three dimensions: application to the Hubbard model on the cubic lattice
- Accessing the ordered phase of correlated Fermi systems: vertex bosonization and mean-field theory within the functional renormalization group
- Truncated unity functional renormalization group for multiband systems with spin-orbit coupling
- Ab-initio description of excited states of a one-dimensional nuclear matter with the Hohenberg-Kohn-theorem-inspired functional-renormalization-group method
- Single-boson exchange functional renormalization group application to the two-dimensional Hubbard model at weak coupling
- Spin and pair density waves in 2D altermagnetic metals
- Holographic unitary renormalization group for correlated electrons -- II: insights on fermionic criticality
- Approximating the frequency dependence of the effective interaction in the functional renormalization group for many-fermion systems
- Interaction-driven first-order and higher-order topological superconductivity
- Quasi-particle functional Renormalisation Group calculations in the two-dimensional half-filled Hubbard model at finite temperatures
- Better Integrators for Functional Renormalization Group Calculations
- Low-Energy Effective Theory at a Quantum Critical Point of the Two-Dimensional Hubbard Model: Mean-Field Analysis
- Intertwined fluctuations and isotope effects in the Hubbard-Holstein model on the square lattice from functional renormalization
- Parquet theory for molecular systems: Formalism and static kernel parquet approximation
- Functional renormalization group for extremely correlated electrons
- Quasi-particle functional Renormalisation Group calculations in the two-dimensional t-t'-Hubbard model
- Bad Metal Behavior and Lifshitz Transition of a Nagaoka Ferromagnet
- Frequency Dependent Functional Renormalization Group for Interacting Fermionic Systems