Dynamics of open quantum spin systems: An assessment of the quantum master equation approach
arXiv:1605.06609 · doi:10.1103/PhysRevE.94.022126
Abstract
Data of the numerical solution of the time-dependent Schrödinger equation of a system containing one spin-1/2 particle interacting with a bath of up to 32 spin-1/2 particles is used to construct a Markovian quantum master equation describing the dynamics of the system spin. The procedure of obtaining this quantum master equation, which takes the form of a Bloch equation with time-independent coefficients, accounts for all non-Markovian effects in as much the general structure of the quantum master equation allows. Our simulation results show that, with a few rather exotic exceptions, the Bloch-type equation with time-independent coefficients provides a simple and accurate description of the dynamics of a spin-1/2 particle in contact with a thermal bath. A calculation of the coefficients that appear in the Redfield master equation in the Markovian limit shows that this perturbatively derived equation quantitatively differs from the numerically estimated Markovian master equation, the results of which agree very well with the solution of the time-dependent Schrödinger equation.
Corrections + additional results, accepted for publication in Physical Review E
References in corpus (9)
- Massive Parallel Quantum Computer Simulator
- Using non-Markovian measures to evaluate quantum master equations for photosynthesis
- Dynamics of the Density Matrix in Contact with a Thermal Bath and the Quantum Master Equation
- Dissipative quantum dynamics with the Surrogate Hamiltonian approach. A comparison between spin and harmonic baths
- Decoherence by a spin thermal bath: Role of the spin-spin interactions and initial state of the bath
- Quantum Decoherence Scaling with Bath Size: Importance of Dynamics, Connectivity, and Randomness
- Evolution of a quantum spin system to its ground state: Role of entanglement and interaction symmetry
- Quantum Decoherence and Thermalization at Finite Temperature within the Canonical Thermal State Ensemble
- Quantum Decoherence at Finite Temperatures
Cited by in corpus (11)
- Random State Technology
- Irreversible Work and Internal Friction in a Quantum Otto Cycle of a Single Arbitrary Spin
- Semi-global approach for propagation of the time-dependent Schrödinger equation for time-dependent and nonlinear problems
- Testing quantum fault tolerance on small systems
- Relaxation, thermalization and Markovian dynamics of two spins coupled to a spin bath
- Thermodynamic utility of Non-Markovianity from the perspective of resource interconversion
- Universal quantum uncertainty relations between non-ergodicity and loss of information
- Real-time simulation of flux qubits used for quantum annealing
- Sustaining Rabi oscillations by using a phase-tunable image drive
- Supercomputer simulations of transmon quantum computers
- Compelling Bounds on Equilibration Times -- the Issue with Fermi's Golden Rule