Nonequilibrium steady states in multi-bath quantum collision models
arXiv:2507.13860 · doi:10.1103/ypyy-ql4c
Abstract
Collision models provide a simple and versatile setting to capture the dynamics of open quantum systems. The standard approach to thermalisition in this setting involves an environment of independent and identically-prepared thermal qubits, interacting sequentially for a finite duration with the system. We compare this to a two-bath scenario in which collisional qubits are prepared in either their ground or excited states and the environment temperature is encoded in system-environment couplings. The system reaches the same thermal steady state for both settings, although even in this limit they describe fundamentally different physical processes, with the two-bath setup yielding a nonequilibrium state with finite heat currents. Non-Markovian dynamics arise when intra-environment interactions in either setting are introduced. Here, the system in the single-bath setup again reaches a steady state at the canonical temperature of the bath, but the nonequilibrium steady state of the two-bath setup tends to a different temperature due to the generation of strong system-environment and intra-environment correlations. The two-bath setting is particularly suited to studying quantum trajectories, which are well-defined also for the non-Markovian case. We showcase this with a trajectory analysis of the heat currents within a two-point measurement scheme. Finally, we consider how our results are impacted when the system-environment interaction leads to strict homogenisation. Our results provide insights into the dynamics and thermodynamics of thermalisation towards nonequilibrium steady states and the role of non-Markovian interactions.
12 pages, 7 figures; v3 close to published version
References in corpus (52)
- Measure for the Degree of Non-Markovian Behavior of Quantum Processes in Open Systems
- Non-Markovian dynamics in open quantum systems
- Eigenstate Thermalization Hypothesis
- Measure for the Non-Markovianity of Quantum Processes
- Quantum and Information Thermodynamics: A Unifying Framework based on Repeated Interactions
- Quantum collision models: open system dynamics from repeated interactions
- Reconciliation of quantum local master equations with thermodynamics
- A classification of entanglement in three-qubit systems
- Optimal state pairs for non-Markovian quantum dynamics
- Comparative study of non-Markovianity measures in exactly solvable one and two qubit models
- Current fluctuations in open quantum systems: Bridging the gap between quantum continuous measurements and full counting statistics
- Tunable Quantum Criticality and Super-ballistic Transport in a `Charge' Kondo Circuit
- Collision model for non-Markovian quantum dynamics
- Composite quantum collision models
- Collision models can efficiently simulate any multipartite Markovian quantum dynamics
- Non-Markovianity and System-Environment Correlations in a microscopic collision model
- System-environment correlations and Markovian embedding of quantum non-Markovian dynamics
- Implications of non-Markovian dynamics for the Landauer bound
- Collision models in open system dynamics: A versatile tool for deeper insights?
- Tensor-network method to simulate strongly interacting quantum thermal machines
- Non-Markovianity, coherence and system-environment correlations in a long-range collision model
- Heat flux dynamics in dissipative cascaded systems
- Non-equilibrium steady-states of memoryless quantum collision models
- Quantum simulation of an exotic quantum critical point in a two-site charge Kondo circuit
- Optimizing autonomous thermal machines powered by energetic coherence
- Entropy production and asymptotic factorization via thermalization: a collisional model approach
- Quantum synchronization in a collision model
- Collisional unfolding of quantum Darwinism
- Exponential improvement for quantum cooling through finite-memory effects
- Thermalization induced by quantum scattering
- Quantum coherence enables hybrid multitask and multisource regimes in autonomous thermal machines
- Heat transport and rectification via quantum statistical and coherence asymmetries
- Collision model for non-Markovian quantum trajectories
- Micro-reversibility and thermalization with collisional baths
- Numerical renormalization group method for entanglement negativity at finite temperature
- Interferometric Quantum Cascade Systems
- Interferometric modulation of quantum cascade interactions
- Structured quantum collision models: generating coherence with thermal resources
- Thermalization and dephasing in collisional reservoirs
- Simulating quantum transport via collisional models on a digital quantum computer
- On thermalization of two-level quantum systems
- Microscopic biasing of discrete-time quantum trajectories
- Nanoscale single-electron box with a floating lead for quantum sensing: modelling and device characterization
- Effect of inter-system coupling on heat transport in a microscopic collision model
- Quantum thermal machine as a rectifier
- Spectral Density Modulation and Universal Markovian Closure of Fermionic Environments
- Unified Collision Model of Coherent and Measurement-based Quantum Feedback
- Making Quantum Collision Models Exact
- Continuous Variable Structured Collision Models
- Transient Dynamics and Homogenization in Incoherent Collision Models
- Simulating quantum collision models with Hamiltonian simulations using early fault-tolerant quantum computers
- Non-Markovianity in collision models with initial intra-environment correlations