Dynamics of a strongly coupled quantum heat engine -- computing bath observables from the hierarchy of pure states
arXiv:2402.06039 · doi:10.1063/5.0192075
Abstract
We present a fully quantum dynamical treatment of a quantum heat engine and its baths based on the Hierarchy of Pure States (HOPS), an exact and general method for open quantum system dynamics. We show how the change of the bath energy and the interaction energy can be determined within HOPS, for arbitrary coupling strength and smooth time dependence of the modulation protocol. The dynamics of all energetic contributions during the operation can be carefully examined both, in its initial transient phase and also later, in its periodic steady state. A quantum Otto engine with a qubit as inherently nonlinear work medium is studied in a regime where the energy associated with the interaction Hamiltonian plays an important role for the global energy balance and, thus, must not be neglected when calculating its power and efficiency. We confirm that the work required to drive the coupling with the baths depends sensitively on the speed of the modulation protocol. Remarkably, departing from the conventional scheme of well-separated phases by allowing for temporal overlap, we discover that one can even gain energy from the modulation of the bath interactions. We visualize these various work contributions using the analogue of state change diagrams of thermodynamic cycles. We offer a concise, full presentation of HOPS with its extension to bath observables, as it serves as a universal tool for the numerically exact description of general quantum dynamical (thermodynamic) scenarios far from the weak-coupling limit.
8 figures
References in corpus (16)
- Perspective: Numerically "exact" approach to open quantum dynamics: The hierarchical equations of motion (HEOM)
- Experimental Test of Quantum Jarzynski Equality with a Trapped Ion System
- Reduced hierarchical equations of motion in real and imaginary time: Correlated initial states and thermodynamic quantities
- Performance of a quantum heat engine at strong reservoir coupling
- Otto refrigerator based on a superconducting qubit: classical and quantum performance
- Using a quantum work meter to test non-equilibrium fluctuation theorems
- Analytic Representations of Bath Correlation Functions for Ohmic and Superohmic Spectral Densities Using Simple Poles
- Generalized Gibbs state with modified Redfield solution: Exact agreement up to second order
- Exact open quantum system dynamics using the Hierarchy of Pure States (HOPS)
- Spin Quantum Heat Engine Quantified by Quantum Steering
- A quantum Szilard engine without heat from a thermal reservoir
- Optimal power and efficiency of single quantum dot heat engines: theory and experiment
- Reexamination of Pure Qubit Work Extraction
- Quantum mechanical work
- Simulating optical linear absorption for mesoscale molecular aggregates: an adaptive hierarchy of pure states approach
- Numerically "exact" simulations of entropy production in the fully quantum regime: Boltzmann entropy versus von Neumann entropy