Observation of phase synchronization and alignment during free induction decay of quantum spins with Heisenberg interactions
arXiv:2104.05748 · doi:10.1088/1367-2630/ac18df
Abstract
Equilibration of observables in closed quantum systems that are described by a unitary time evolution is a meanwhile well-established phenomenon apart from a few equally well-established exceptions. Here we report the surprising theoretical observation that integrable as well as non-integrable spin rings with nearest-neighbor or long-range isotropic Heisenberg interaction not only equilibrate but moreover also synchronize the directions of the expectation values of the individual spins. We highlight that this differs from spontaneous synchronization in quantum dissipative systems. Here, we observe mutual synchronization of local spin directions in closed systems under unitary time evolution. Contrary to dissipative systems, this synchronization is independent of whether the interaction is ferro- or antiferromagnetic. In our numerical simulations, we investigate the free induction decay (FID) of an ensemble of up to quantum spins with each by solving the time-dependent Schrödinger equation numerically exactly. Our findings are related to, but not fully explained by conservation laws of the system. The synchronization is very robust against for instance random fluctuations of the Heisenberg couplings and inhomogeneous magnetic fields. Synchronization is not observed with strong enough symmetry-breaking interactions such as the dipolar interaction. We also compare our results to closed-system classical spin dynamics which does not exhibit phase synchronization due to the lack of entanglement. For classical spin systems the fixed magnitude of individual spins effectively acts like additional conservation laws.
13 pages, 21 figures
References in corpus (14)
- Thermalization and its mechanism for generic isolated quantum systems
- Will spin-relaxation times in molecular magnets permit quantum information processing?
- Emergent SU(2) dynamics and perfect quantum many-body scars
- Coherence of single spins coupled to a nuclear spin bath of varying density
- Electron Spin Dephasing due to Hyperfine Interactions with a Nuclear Spin Bath
- Dynamics, Synchronization and Quantum Phase Transitions of Two Dissipative Spins
- Calculating the energy spectra of magnetic molecules: application of real- and spin-space symmetries
- Transverse spin dynamics in the anisotropic Heisenberg model realized with ultracold atoms
- Quantum synchronization in dimer atomic lattices
- Discrete antiferromagnetic spin-wave excitations in the giant ferric wheel Fe18
- Typical Relaxation of Isolated Many-Body Systems Which Do Not Thermalize
- Intrinsic decoherence in isolated quantum systems
- Decoherence of a singlet-triplet superposition state under dipolar interactions of an uncorrelated environment
- Decoherence and pointer states in small antiferromagnets: A benchmark test
Cited by in corpus (5)
- Quantum Effects on the Synchronization Dynamics of the Kuramoto Model
- Decay of long-lived oscillations after quantum quenches in gapped interacting quantum systems
- Non-ergodic one-magnon magnetization dynamics of the antiferromagnetic delta chain
- Non-equilibration, synchronization, and time crystals in isotropic Heisenberg models
- Studies of decoherence in strongly anisotropic spin triangles with toroidal or general non-collinear easy axes