Spacetime effects on wavepackets of coherent light
- URL: http://arxiv.org/abs/2106.12424v2
- Date: Tue, 17 May 2022 08:14:16 GMT
- Title: Spacetime effects on wavepackets of coherent light
- Authors: David Edward Bruschi, Symeon Chatzinotas, Frank K. Wilhelm and Andreas
W. Schell
- Abstract summary: We introduce an operational way to distinguish between the overall shift in the pulse wavepacket and its genuine deformation after propagation.
We then apply our technique to quantum states of photons that are coherent in the frequency degree of freedom.
We find that the quantum coherence initially present can enhance the deformation induced by propagation in a curved background.
- Score: 24.587462517914865
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We investigate the interplay between gravity and the quantum coherence
present in the state of a pulse of light propagating in curved spacetime. We
first introduce an operational way to distinguish between the overall shift in
the pulse wavepacket and its genuine deformation after propagation. We then
apply our technique to quantum states of photons that are coherent in the
frequency degree of freedom, as well as to states of completely incoherent
light. We focus on Gaussian profiles and frequency combs and find that the
quantum coherence initially present can enhance the deformation induced by
propagation in a curved background. These results further supports the claim
that genuine quantum features, such as quantum coherence, can be used to probe
the gravitational properties of physical systems. We specialize our techniques
to Earth-to-satellite communication setups, where the effects of gravity are
weak but can be tested with current satellite technologies.
Related papers
- Polariton Fluids as Quantum Field Theory Simulators on Tailored Curved Spacetimes [0.0]
Quantum fields in curved spacetime exhibit a wealth of effects like Hawking radiation from black holes.
In experiments, a fluid going from sub- to supersonic speed creates an effectively curved spacetime for the acoustic field.
Control over the horizon curvature and access to the spectrum on either side demonstrates the potential of quantum fluids of light for the study of field theories.
arXiv Detail & Related papers (2023-11-02T16:52:09Z) - Real-Space, Real-Time Approach to Quantum-Electrodynamical
Time-Dependent Density Functional Theory [55.41644538483948]
The equations are solved by time propagating the wave function on a tensor product of a Fock-space and real-space grid.
Examples include the coupling strength and light frequency dependence of the energies, wave functions, optical absorption spectra, and Rabi splitting magnitudes in cavities.
arXiv Detail & Related papers (2022-09-01T18:49:51Z) - Quantum signatures in nonlinear gravitational waves [0.0]
We investigate quantum signatures in gravitational waves using tools from quantum optics.
We show that Squeezed-coherent gravitational waves can enhance or suppress the signal measured by an interferometer.
We also show that Gaussian gravitational wave quantum states can be reconstructed from measurements over an ensemble of optical fields interacting with a single copy of the gravitational wave.
arXiv Detail & Related papers (2021-11-02T17:55:53Z) - Testing the equivalence principle and discreteness of spacetime through
the $t^3$ gravitational phase with quantum information technology [0.0]
We propose a new thought experiment, based on present-day Quantum Information Technologies, to measure quantum gravitational effects.
The technique here proposed promise to reveal gravitational field fluctuations from the analysis of the noise associated to an ideal output of a measurement process of a quantum system.
We find that this setup, built with massive mesoscopic particles, can potentially reveal the $t3$ gravitational phase term and thus, the BMV effect.
arXiv Detail & Related papers (2021-08-19T02:10:13Z) - Visualizing spinon Fermi surfaces with time-dependent spectroscopy [62.997667081978825]
We propose applying time-dependent photo-emission spectroscopy, an established tool in solid state systems, in cold atom quantum simulators.
We show in exact diagonalization simulations of the one-dimensional $t-J$ model that the spinons start to populate previously unoccupied states in an effective band structure.
The dependence of the spectral function on the time after the pump pulse reveals collective interactions among spinons.
arXiv Detail & Related papers (2021-05-27T18:00:02Z) - Gravity enhanced quantum spatial target detection [0.0]
Quantum illumination can utilize entangled light to detect the low-reflectivity target that is hidden in a bright thermal background.
It is found that the spatial quantum illumination with entangled state transmitter outperforms that with coherent-state transmitter in the near-Earth curved spacetime.
arXiv Detail & Related papers (2021-04-06T06:40:38Z) - Hyperentanglement in structured quantum light [50.591267188664666]
Entanglement in high-dimensional quantum systems, where one or more degrees of freedom of light are involved, offers increased information capacities and enables new quantum protocols.
Here, we demonstrate a functional source of high-dimensional, noise-resilient hyperentangled states encoded in time-frequency and vector-vortex structured modes.
We generate highly entangled photon pairs at telecom wavelength that we characterise via two-photon interference and quantum state tomography, achieving near-unity visibilities and fidelities.
arXiv Detail & Related papers (2020-06-02T18:00:04Z) - Theory of waveguide-QED with moving emitters [68.8204255655161]
We study a system composed by a waveguide and a moving quantum emitter in the single excitation subspace.
We first characterize single-photon scattering off a single moving quantum emitter, showing both nonreciprocal transmission and recoil-induced reduction of the quantum emitter motional energy.
arXiv Detail & Related papers (2020-03-20T12:14:10Z) - Zitterbewegung and Klein-tunneling phenomena for transient quantum waves [77.34726150561087]
We show that the Zitterbewegung effect manifests itself as a series of quantum beats of the particle density in the long-time limit.
We also find a time-domain where the particle density of the point source is governed by the propagation of a main wavefront.
The relative positions of these wavefronts are used to investigate the time-delay of quantum waves in the Klein-tunneling regime.
arXiv Detail & Related papers (2020-03-09T21:27:02Z) - The influence of spacetime curvature on quantum emission in optical
analogues to gravity [0.0]
Quantum fluctuations on curved spacetimes cause the emission of pairs of particles from the quantum vacuum.
We analytically calculate for all the particle flux, correlations and entanglement frequencies.
The quantum state is a diagnostic for the mode conversion in laboratory tests of quantum field theory on curved spacetimes.
arXiv Detail & Related papers (2020-01-16T14:09:37Z) - Proposal for an optical interferometric measurement of the gravitational
red-shift with satellite systems [52.77024349608834]
Einstein Equivalence Principle (EEP) underpins all metric theories of gravity.
The iconic gravitational red-shift experiment places two fermionic systems, used as clocks, in different gravitational potentials.
A fundamental point in the implementation of a satellite large-distance optical interferometric experiment is the suppression of the first-order Doppler effect.
We propose a novel scheme to suppress it, by subtracting the phase-shifts measured in the one-way and in the two-way configuration between a ground station and a satellite.
arXiv Detail & Related papers (2018-11-12T16:25:57Z)
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.