Dynamical quantum phase transition in diamond: applications in quantum
metrology
- URL: http://arxiv.org/abs/2202.05216v1
- Date: Thu, 10 Feb 2022 18:21:41 GMT
- Title: Dynamical quantum phase transition in diamond: applications in quantum
metrology
- Authors: Francisco J. Gonz\'alez, Ariel Norambuena, Ra\'ul Coto
- Abstract summary: We show that nuclear spins undergo dynamical quantum phase transition (DQPT) by appropriately choosing the relation between the transverse and longitudinal components of an external magnetic field.
We propose a novel quenched dynamics that originates from the rotation of the central electron spin, which controls the DQPT relying on the anisotropy of the hyperfine coupling.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Nonequilibrium dynamics is a paramount scenario for studying quantum systems.
The emergence of new features with no equilibrium counterpart, such as
dynamical quantum phase transition (DQPT), has attracted wide attention. In
this work, we depart from the well known Ising model and showcase an
experimentally accessible configuration of a negatively charged
Nitrogen-Vacancy center that interacts with nearby Carbon-13 nuclear spins. We
provide new insights into this system in the context of DQPT. We show that
nuclear spins undergo DQPT by appropriately choosing the relation between the
transverse and longitudinal components of an external magnetic field.
Furthermore, we can steer the DQPT via a time-dependent longitudinal magnetic
field and apply this control to enhance the estimation of the coupling strength
between the nuclear spins. Moreover, we propose a novel quenched dynamics that
originates from the rotation of the central electron spin, which controls the
DQPT relying on the anisotropy of the hyperfine coupling.
Related papers
- Dynamics of spin-momentum entanglement from superradiant phase transitions [0.0]
We consider an experimentally feasible many-body cavity QED model describing a four-level system.
The resulting model comprises a pair of Dicke Hamiltonians constructed from pseudo-spin operators.
We discuss the role of cavity losses in steering the system's dynamics into such entangled states.
arXiv Detail & Related papers (2023-12-06T19:00:01Z) - Magnon-mediated qubit coupling determined via dissipation measurements [0.0]
Hybrid quantum systems (HQSs) of localized nitrogen-vacancy (NV) centers in diamond and delocalized magnon modes have attracted significant attention.
Here, we experimentally determine the magnon-mediated NV-NV coupling from the magnon-induced self-energy of NV centers.
Our results are quantitatively consistent with a model in which the NV center is coupled to magnons by dipolar interactions.
arXiv Detail & Related papers (2023-08-22T18:00:13Z) - Slow semiclassical dynamics of a two-dimensional Hubbard model in
disorder-free potentials [77.34726150561087]
We show that introduction of harmonic and spin-dependent linear potentials sufficiently validates fTWA for longer times.
In particular, we focus on a finite two-dimensional system and show that at intermediate linear potential strength, the addition of a harmonic potential and spin dependence of the tilt, results in subdiffusive dynamics.
arXiv Detail & Related papers (2022-10-03T16:51:25Z) - Probing dynamics of a two-dimensional dipolar spin ensemble using single
qubit sensor [62.997667081978825]
We experimentally investigate individual spin dynamics in a two-dimensional ensemble of electron spins on the surface of a diamond crystal.
We show that this anomalously slow relaxation rate is due to the presence of strong dynamical disorder.
Our work paves the way towards microscopic study and control of quantum thermalization in strongly interacting disordered spin ensembles.
arXiv Detail & Related papers (2022-07-21T18:00:17Z) - Tuning long-range fermion-mediated interactions in cold-atom quantum
simulators [68.8204255655161]
Engineering long-range interactions in cold-atom quantum simulators can lead to exotic quantum many-body behavior.
Here, we propose several tuning knobs, accessible in current experimental platforms, that allow to further control the range and shape of the mediated interactions.
arXiv Detail & Related papers (2022-03-31T13:32:12Z) - Directly Revealing Entanglement Dynamics through Quantum Correlation
Transfer Functions with Resultant Demonstration of the Mechanism of Many-Body
Localization [0.0]
This paper introduces the Quantum Correlation Transfer Function (QCTF) approach to entanglement dynamics in many-body quantum systems.
We show that QCTF can be fully characterized directly from the system's Hamiltonian, which circumvents the bottleneck of calculating the many-body system's time-evolution.
We also show that QCTF provides a new foundation to study the Eigenstate Thermalization Hypothesis (ETH)
arXiv Detail & Related papers (2022-01-26T22:50:04Z) - Anisotropic electron-nuclear interactions in a rotating quantum spin
bath [55.41644538483948]
Spin-bath interactions are strongly anisotropic, and rapid physical rotation has long been used in solid-state nuclear magnetic resonance.
We show that the interaction between electron spins of nitrogen-vacancy centers and a bath of $13$C nuclear spins introduces decoherence into the system.
Our findings offer new insights into the use of physical rotation for quantum control with implications for quantum systems having motional and rotational degrees of freedom that are not fixed.
arXiv Detail & Related papers (2021-05-16T06:15:00Z) - Controlled coherent dynamics of [VO(TPP)], a prototype molecular nuclear
qudit with an electronic ancilla [50.002949299918136]
We show that [VO(TPP)] (vanadyl tetraphenylporphyrinate) is a promising system suitable to implement quantum computation algorithms.
It embeds an electronic spin 1/2 coupled through hyperfine interaction to a nuclear spin 7/2, both characterized by remarkable coherence.
arXiv Detail & Related papers (2021-03-15T21:38:41Z) - Chemical tuning of spin clock transitions in molecular monomers based on
nuclear spin-free Ni(II) [52.259804540075514]
We report the existence of a sizeable quantum tunnelling splitting between the two lowest electronic spin levels of mononuclear Ni complexes.
The level anti-crossing, or magnetic clock transition, associated with this gap has been directly monitored by heat capacity experiments.
The comparison of these results with those obtained for a Co derivative, for which tunnelling is forbidden by symmetry, shows that the clock transition leads to an effective suppression of intermolecular spin-spin interactions.
arXiv Detail & Related papers (2021-03-04T13:31:40Z) - Steering Interchange of Polariton Branches via Coherent and Incoherent
Dynamics [1.9573380763700712]
We propose the control of single- and two-body Jaynes-Cummings systems in a non-equilibrium scenario.
Our findings provide a systematic approach to manipulate polaritons interchange, that we apply to reveal new insights in the transition between Mott Insulator- and Super-like states.
arXiv Detail & Related papers (2020-10-07T16:31:03Z)
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.