Quantum entanglement for atoms coupling to fluctuating electromagnetic
field in the cosmic string spacetime
- URL: http://arxiv.org/abs/2003.02223v1
- Date: Sun, 1 Mar 2020 23:54:25 GMT
- Title: Quantum entanglement for atoms coupling to fluctuating electromagnetic
field in the cosmic string spacetime
- Authors: Zhiming Huang
- Abstract summary: We investigate entanglement dynamics for two atoms coupling with electromagnetic field in cosmic string spacetime.
It is found that entanglement behaviors are dependent on vacuum fluctuation, spacetime topology, two-atom separation and atomic polarization orientation.
- Score: 4.56877715768796
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We investigate entanglement dynamics for two atoms coupling with fluctuating
electromagnetic field in the cosmic string spacetime. We calculate the
entanglement for different conditions. It is found that the entanglement
behaviors are dependent on vacuum fluctuation, spacetime topology, two-atom
separation and atomic polarization orientation. After a long time of evolution,
entanglement would vanish, which means entanglement affected by electromagnetic
fluctuation can not maintain for a long time. For different spacetime
topologies, entanglement presents different behaviors dependent on various
parameters. When deficit angle parameter $\nu=1$ and atom-string distance is
towards infinity, the results in flat spacetime are recovered. When atoms keep
close to the string, entanglement can be improved; specially, when two atoms
locate on the string and have no polarization of axial direction, atoms are not
affected by the electromagnetic fluctuation and entanglement can remain
unchanged. When two-atom separation is relatively large, entanglement exhibits
oscillation behavior as atom-string distance varies. This indicates that the
existence of string profoundly modifies on the vacuum fluctuation and
atom-field interaction. In addition, when two-atom separation is small,
entanglement gains better improvement. Many parameters and conditions provide
us with greater freedom to control the entanglement behaviors. In principle,
this is useful to sense the cosmic string spacetime topology structure and
property, and discriminate different kinds of spacetime.
Related papers
- Quantum noise in time-dependent media and cosmic expansion [0.0]
In empty, flat space the renormalized vacuum energy is exactly zero, but not in time-dependent media.
We show that the vacuum energy during cosmic expansion effectively reduces the weights of radiation and matter by characteristic factors.
arXiv Detail & Related papers (2025-01-05T10:16:29Z) - Vacuum polarization around cosmic strings in de Sitter spacetime [0.0]
The polarization of the vacuum state for quantum fields is induced by the non-trivial topology of the spacetime around cosmic strings.
The influence of the spacetime curvature is essential at distances from the string of the order of or larger than the curvature radius.
A qualitatively new feature is the appearance of the vacuum energy flux in the radial direction with respect to the cosmic string.
arXiv Detail & Related papers (2024-12-10T09:22:34Z) - Observation of string breaking on a (2 + 1)D Rydberg quantum simulator [59.63568901264298]
We report the observation of string breaking in synthetic quantum matter using a programmable quantum simulator.
Our work paves a way to explore phenomena in high-energy physics using programmable quantum simulators.
arXiv Detail & Related papers (2024-10-21T22:33:16Z) - Long-lived entanglement of molecules in magic-wavelength optical tweezers [41.94295877935867]
We present the first realisation of a microwave-driven entangling gate between two molecules.
We show that the magic-wavelength trap preserves the entanglement, with no measurable decay over 0.5 s.
The extension of precise quantum control to complex molecular systems will allow their additional degrees of freedom to be exploited across many domains of quantum science.
arXiv Detail & Related papers (2024-08-27T09:28:56Z) - Coherent Control of Spontaneous Emission for a giant driven $Λ $-type three-level atom [1.9976998521795732]
Quantum optics with giant atoms provides a new approach for implementing optical memory devices at the atomic scale.
We study the relaxation dynamics of a single driven three-level atom interacting with a one-dimensional waveguide.
arXiv Detail & Related papers (2024-05-30T11:03:08Z) - Entanglement dynamics in $κ$-deformed spacetime [0.0]
We treat two identical and mutually independent two-level atoms that are coupled to a quantum field as an open quantum system.
We compare the entanglement dynamics of the two atoms moving with different trajectories in $kappa$-deformed and Minkowski spacetimes.
When the environment-induced interatomic interaction does not exist, the entanglement dynamics of two static atoms in $kappa$-deformed spacetime are reduced to that in Minkowski spacetime.
arXiv Detail & Related papers (2023-09-15T04:06:53Z) - The strongly driven Fermi polaron [49.81410781350196]
Quasiparticles are emergent excitations of matter that underlie much of our understanding of quantum many-body systems.
We take advantage of the clean setting of homogeneous quantum gases and fast radio-frequency control to manipulate Fermi polarons.
We measure the decay rate and the quasiparticle residue of the driven polaron from the Rabi oscillations between the two internal states.
arXiv Detail & Related papers (2023-08-10T17:59:51Z) - Relativistic aspects of orbital and magnetic anisotropies in the
chemical bonding and structure of lanthanide molecules [60.17174832243075]
We study the electronic and ro-vibrational states of heavy homonuclear lanthanide Er2 and Tm2 molecules by applying state-of-the-art relativistic methods.
We were able to obtain reliable spin-orbit and correlation-induced splittings between the 91 Er2 and 36 Tm2 electronic potentials dissociating to two ground-state atoms.
arXiv Detail & Related papers (2021-07-06T15:34:00Z) - Collective spontaneous emission of two entangled atoms near an
oscillating mirror [50.591267188664666]
We consider the cooperative spontaneous emission of a system of two identical atoms, interacting with the electromagnetic field in the vacuum state.
Using time-dependent theory, we investigate the spectrum of the radiation emitted by the two-atom system.
We show that it is modulated in time, and that the presence of the oscillating mirror can enhance or inhibit the decay rate.
arXiv Detail & Related papers (2020-10-07T06:48:20Z) - Gravitational waves affect vacuum entanglement [68.8204255655161]
The entanglement harvesting protocol is an operational way to probe vacuum entanglement.
Using this protocol, it is demonstrated that while the transition probability of an individual atom is unaffected by the presence of a gravitational wave, the entanglement harvested by two atoms depends sensitively on the frequency of the gravitational wave.
This suggests that the entanglement signature left by a gravitational wave may be useful in characterizing its properties, and potentially useful in exploring the gravitational-wave memory effect and gravitational-wave induced decoherence.
arXiv Detail & Related papers (2020-06-19T18:01:04Z) - Quantum coherent spin-electric control in a molecular nanomagnet at
clock transitions [57.50861918173065]
Electrical control of spins at the nanoscale offers architectural advantages in spintronics.
Recent demonstrations of electric-field (E-field) sensitivities in molecular spin materials are tantalising.
E-field sensitivities reported so far are rather weak, prompting the question of how to design molecules with stronger spin-electric couplings.
arXiv Detail & Related papers (2020-05-03T09:27:31Z)
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.