Boundary-driven magnetization transport in the spin- XXZ chain: Role of the system-bath coupling strength and timescales
arXiv:2507.16528 · doi:10.1103/95pc-s3b3
Abstract
Understanding the transport properties of quantum many-body systems is a central challenge in condensed matter and statistical physics. Theoretical studies usually rely on two main approaches: Dynamics of linear-response functions in closed systems and boundary-driven dynamics governed by Markovian master equations for open systems. While the equivalence of their dynamical behavior has been explored in recent studies, a systematic comparison of the transport coefficients obtained from these two classes of approaches remains a largely open question. Here, we address this gap by comparing and contrasting the dc diffusion constant according to the two approaches, focusing on the specific example of magnetization transport in the spin- XXZ chain. Using exact numerical simulations for finite system sizes, we find (i) a clear mismatch between the two and (ii) a strong dependence of on the system-bath coupling strength for the open system, where neither (i) nor (ii) tend to vanish in the thermodynamic limit. These findings suggest limitations of the open-system approach to transport coefficients. To gain insight into the origin of (i) and (ii), we go beyond and analyze the full time dependence of the diffusion coefficient in the open system. In this way, we find that both (i) and (ii) vanish up to a finite time scale. While this time scale gradually increases with system size and tends to be macroscopic in the thermodynamic limit, this increase is still slow compared to the increase of the time to reach the steady state, where (i) and (ii) do not vanish. This observation can be seen as a wrong, yet unavoidable order of limits of long times first and large system sizes afterwards.
11 pages, 9 figures
References in corpus (28)
- Many-Body Physics with Ultracold Gases
- The ITensor Software Library for Tensor Network Calculations
- Quantum trajectories and open many-body quantum systems
- Programmable Quantum Simulations of Spin Systems with Trapped Ions
- Finite-temperature transport in one-dimensional quantum lattice models
- Spin transport in a one-dimensional anisotropic Heisenberg model
- Typicality for Generalized Microcanonical Ensembles
- Modeling heat transport through completely positive maps
- Lecture notes on Generalised Hydrodynamics
- Superdiffusion in spin chains
- Transport in open spin chains: A Monte Carlo wave-function approach
- A short introduction to Generalized Hydrodynamics
- Anomalous transport from hot quasiparticles in interacting spin chains
- Generalized hydrodynamics: a perspective
- Density dynamics from current auto-correlations at finite time- and length-scales
- Selected applications of typicality to real-time dynamics of quantum many-body systems
- Generalized hydrodynamics, quasiparticle diffusion, and anomalous local relaxation in random integrable spin chains
- Relaxation, thermalization and Markovian dynamics of two spins coupled to a spin bath
- Diffusion constants from the recursion method
- Spin diffusion in perturbed isotropic Heisenberg spin chain
- From dissipationless to normal diffusion in easy-axis Heisenberg spin chain
- Refining Deutsch's approach to thermalization
- Emergent dipole moment conservation and subdiffusion in tilted chains
- Spin-1/2 XXZ chain coupled to two Lindblad baths: Constructing nonequilibrium steady states from equilibrium correlation functions
- Real-time broadening of bath-induced density profiles from closed-system correlation functions
- Lindblad dynamics from spatio-temporal correlation functions in nonintegrable spin-1/2 chains with different boundary conditions
- Scaling of diffusion constants in perturbed easy-axis Heisenberg spin chains
- Einstein relation for subdiffusive relaxation in Stark chains