Nonequilibrium quantum criticality in bilayer itinerant ferromagnets
arXiv:0911.1133 · doi:10.1103/PhysRevB.81.125430
Abstract
We present a theory of nonequilibrium quantum criticality in a coupled bilayer system of itinerant electron magnets. The model studied consists of the first layer subjected to an inplane current and open to an external substrate. The second layer is closed and subject to no direct external drive, but couples to the first layer via short-ranged spin exchange interaction. No particle exchange is assumed between the layers. Starting from a microscopic fermionic model, we derive an effective action in terms of two coupled bosonic fields which are related to the magnetization fluctuations of the two layers. When there is no interlayer coupling, the two bosonic modes possess different dynamical critical exponents z with z=2 (z=3) for the first (second) layer. This results in multi-scale quantum criticality in the coupled system. It is shown that the linear coupling between the two fields leads to a low energy fixed point characterized by the larger dynamical critical exponent z=3. The perturbative renormalization group is used to compute the correlation length in the quantum disordered and quantum critical regimes. We also derive the stochastic dynamics obeyed by the critical fluctuations in the quantum critical regime. Comparing the nonequilibrium situation to the thermal equilibrium scenario, where the whole system is at a temperature T, we find that the nonequilibrium drive does not always play the role of temperature.
20+ pages, 3 figures; Revised version as accepted by PRB, added figure of mean field phase diagram
References in corpus (12)
- Fermi-liquid instabilities at magnetic quantum phase transitions
- Quantum critical behavior in itinerant electron systems -- Eliashberg theory and instability of a ferromagnetic quantum-critical point
- Nonequilibrium quantum criticality in open electronic systems
- Multiscale quantum criticality: Pomeranchuk instability in isotropic metals
- Multi-scale fluctuations near a Kondo Breakdown Quantum Critical Point
- Current driven quantum criticality in itinerant electron ferromagnets
- Quantum Criticality out of Equilibrium: Steady State in a Magnetic Single-Electron Transistor
- Quantum critical points of Helical Fermi Liquids
- Current fluctuations near to the 2D superconductor-insulator quantum critical point
- Universal non-linear conductivity near to an itinerant-electron ferromagnetic quantum critical point
- On the concept of effective temperature in current carrying quantum critical states
- Dissipative and nonequilibrium effects near a superconductor-metal quantum critical point
Cited by in corpus (10)
- Introduction to the Dicke model: from equilibrium to nonequilibrium, and vice versa
- Thermalization and dissipation in out of equilibrium quantum systems: A perturbative renormalization group approach
- Pseudogap Anderson impurity model out of equilibrium: A master equation tensor network approach
- Non-equilibrium time evolution of bosons from the functional renormalization group
- Finite temperature crossovers near quantum tricritical points in metals
- Steady-state dynamics and effective temperatures of quantum criticality in an open system
- Mott insulator breakdown through pattern formation
- Non-equilibrium quantum transport through a dissipative resonant level
- Mixed-order symmetry-breaking quantum phase transition far from equilibrium
- Current driven defect unbinding transition in an XY ferromagnet