Strong-coupling emergence of dark states in XX central spin models
- URL: http://arxiv.org/abs/2112.09557v1
- Date: Fri, 17 Dec 2021 15:12:02 GMT
- Title: Strong-coupling emergence of dark states in XX central spin models
- Authors: Claude Dimo and Alexandre Faribault
- Abstract summary: It was recently shown that the XX central spin model is integrable in the presence of a magnetic field to the plane in which the coupling exists.
We show that, provided the coupling is strong enough, dark states can actually be found even in the presence of an in-plane magnetic field.
- Score: 77.34726150561087
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: It was recently shown that the XX central spin model is integrable in the
presence of a magnetic field perpendicular to the plane in which the coupling
exists. A large number of its eigenstates are such that the central spin is not
correlated to the environmental spins it is coupled to. In this work, we first
demonstrate that the XX-central spin model remains integrable in the presence
of an arbitrarily oriented magnetic field. We then show that, provided the
coupling is strong enough, dark states can actually be found even in the
presence of an in-plane magnetic field. We finally provide a simple explanation
of this result and demonstrate its universality for a variety of distinct
distributions of the coupling of the central spin to the various bath spins.
Related papers
- Topologically protected Bell-cat states in a simple spin model [0.0]
We consider the topological properties of the so-called central spin model that consists of $N$ identical spins coupled to a single distinguishable central spin.
We find that the model accommodates topologically protected eigenstates that are Bell-cat' states consisting of a Schr"odinger cat state of the $N$ spins that is maximally entangled with the central spin.
arXiv Detail & Related papers (2024-10-31T00:46:48Z) - Integrability and dark states of the XX spin-1 central spin model in a transverse field [44.99833362998488]
The XX central spin model is integrable in the presence of a magnetic field oriented to the XY plane in which the coupling exists.
In the spin-1/2 case, it was also shown, through an appropriate limit of the non-skew symmetric XXZ Richardson-Gaudin models, that it remained integrable even when the magnetic field is tilted to contain an in-plane component.
arXiv Detail & Related papers (2024-07-03T11:47:22Z) - Emergent Majorana metal from a chiral spin liquid [50.56734933757366]
We propose a novel mechanism to explain the emergence of an intermediate gapless spin liquid phase (IGP) in the antiferromagnetic Kitaev model.
We show that the Majorana spectral function captures the dynamical spin and dimer correlations obtained by the infinite Projectedangled Pair States (iPEPS) an Entsatz.
arXiv Detail & Related papers (2024-05-20T18:00:01Z) - Spin-orbit torque on nuclear spins exerted by a spin accumulation via
hyperfine interactions [49.1574468325115]
This article demonstrates that the hyperfine coupling, which consists of Fermi contact and dipolar interactions, can mediate the application of spin-orbit torques acting on nuclear spins.
The reactions to the equilibrium and nonequilibrium components of the spin density is a torque on the nucleus with field-like and damping-like components.
This nuclear spin-orbit torque is a step toward stabilizing and controlling nuclear magnetic momenta, in magnitude and direction, and realizing nuclear spintronics.
arXiv Detail & Related papers (2023-05-21T08:05:23Z) - Localization in the random XXZ quantum spin chain [55.2480439325792]
We study the many-body localization (MBL) properties of the Heisenberg XXZ spin-$frac12$ chain in a random magnetic field.
We prove that the system exhibits localization in any given energy interval at the bottom of the spectrum in a nontrivial region of the parameter space.
arXiv Detail & Related papers (2022-10-26T17:25:13Z) - Quantum simulation of spin-1/2 XYZ model using solid-state spin centers [2.0317687721731175]
We propose a novel solid-state platform for creating quantum simulators based on implanted spin centers in semiconductors.
We show that under the presence of an external magnetic field, an array of $S=1$ spin centers interacting through magnetic dipole-dipole interaction can be mapped into an effective spin-half system.
This system presents a wide range of quantum phases and critical behaviors that can be controlled via magnetic field and orientational arrangement of the spin centers.
arXiv Detail & Related papers (2022-09-15T17:57:43Z) - Coherence of an extended central spin model with a coupled spin bath [5.7111787284199576]
We study an extended central spin model with an isotropic nearest-neighbour spin-exchange interaction among the bath spins.
We find that if the couplings among the bath spins are antiferromagnetic, the central spin has good coherence and polarization at low temperatures.
A dephasing phenomenon is identified when the initial state of the central spin is unpolarized.
arXiv Detail & Related papers (2020-07-05T10:06:08Z) - Giant spin current rectification due to the interplay of negative
differential conductance and a non-uniform magnetic field [0.0]
In XXZ chains, spin transport can be significantly suppressed when the interactions in the chain and the bias of the dissipative driving are large enough.
Here we show that this many-body effect, combined with a non-uniform magnetic field, can allow a high degree of control of the spin current.
arXiv Detail & Related papers (2020-01-31T03:46:53Z) - Spin current generation and control in carbon nanotubes by combining
rotation and magnetic field [78.72753218464803]
We study the quantum dynamics of ballistic electrons in rotating carbon nanotubes in the presence of a uniform magnetic field.
By suitably combining the applied magnetic field intensity and rotation speed, one can tune one of the currents to zero while keeping the other one finite, giving rise to a spin current generator.
arXiv Detail & Related papers (2020-01-20T08:54:56Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.