Dynamics and control of entangled electron-photon states in nanophotonic
systems with time-variable parameters
- URL: http://arxiv.org/abs/2011.01531v1
- Date: Sun, 1 Nov 2020 01:13:34 GMT
- Title: Dynamics and control of entangled electron-photon states in nanophotonic
systems with time-variable parameters
- Authors: Qianfan Chen, Yongrui Wang, Sultan Almutairi, Maria Erukhimova,
Mikhail Tokman, Alexey Belyanin
- Abstract summary: We study the dynamics of strongly coupled nanophotonic systems with time-variable parameters.
In particular, we demonstrate protocols for switching on and off the entanglement between the fermionic and photonic degrees of freedom.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We study the dynamics of strongly coupled nanophotonic systems with
time-variable parameters. The approximate analytic solutions are obtained for a
broad class of open quantum systems including a two-level fermion emitter
strongly coupled to a multimode quantized electromagnetic field in a cavity
with time-varying cavity resonances or the electron transition energy. The
coupling of the fermion and photon subsystems to their dissipative reservoirs
is included within the stochastic equation of evolution approach, which is
equivalent to the Lindblad approximation in the master equation formalism. The
analytic solutions for the quantum states and the observables are obtained
under the approximation that the rate of parameter modulation and the amplitude
of the frequency modulation are much smaller than the optical transition
frequencies. At the same time, they can be arbitrary with respect to the
generalized Rabi oscillations frequency which determines the coherent dynamics.
Therefore, our analytic theory can be applied to an arbitrary modulation of the
parameters, both slower and faster than the Rabi frequency, for complete
control of the quantum state. In particular, we demonstrate protocols for
switching on and off the entanglement between the fermionic and photonic
degrees of freedom, swapping between the quantum states, and the decoupling of
the fermionic qubit from the cavity field due to modulation-induced
transparency.
Related papers
- Nonlinear dynamical Casimir effect and Unruh entanglement in waveguide QED with parametrically modulated coupling [83.88591755871734]
We study theoretically an array of two-level qubits moving relative to a one-dimensional waveguide.
When the frequency of this motion approaches twice the qubit resonance frequency, it induces parametric generation of photons and excitation of the qubits.
We develop a comprehensive general theoretical framework that incorporates both perturbative diagrammatic techniques and a rigorous master-equation approach.
arXiv Detail & Related papers (2024-08-30T15:54:33Z) - Entanglement of photonic modes from a continuously driven two-level system [34.50067763557076]
We experimentally generate entangled photonic modes by continuously exciting a quantum emitter, a superconducting qubit, with a coherent drive.
We show that entanglement is generated between modes extracted from the two sidebands of the resonance fluorescence spectrum.
Our approach can be utilized to distribute entanglement at a high rate in various physical platforms.
arXiv Detail & Related papers (2024-07-10T18:48:41Z) - Dynamical excitation control and multimode emission of an atom-photon bound state [3.0423353969532436]
Atom-photon bound states arise from the coupling of quantum emitters to the band edge of dispersion-engineered waveguides.
We study the dynamics of an atom-photon bound state emerging from coupling a frequency-tunable quantum emitter to a microwave metamaterial.
arXiv Detail & Related papers (2024-04-08T14:16:41Z) - Amplification of quantum transfer and quantum ratchet [56.47577824219207]
We study a model of amplification of quantum transfer and making it directed which we call the quantum ratchet model.
The ratchet effect is achieved in the quantum control model with dissipation and sink, where the Hamiltonian depends on vibrations in the energy difference synchronized with transitions between energy levels.
Amplitude and frequency of the oscillating vibron together with the dephasing rate are the parameters of the quantum ratchet which determine its efficiency.
arXiv Detail & Related papers (2023-12-31T14:04:43Z) - Simulating polaritonic ground states on noisy quantum devices [0.0]
We introduce a general framework for simulating electron-photon coupled systems on small, noisy quantum devices.
To achieve chemical accuracy, we exploit various symmetries in qubit reduction methods.
We measure two properties: ground-state energy, fundamentally relevant to chemical reactivity, and photon number.
arXiv Detail & Related papers (2023-10-03T14:45:54Z) - Meson content of entanglement spectra after integrable and nonintegrable
quantum quenches [0.0]
We calculate the time evolution of the lower part of the entanglement spectrum and return rate functions after global quantum quenches in the Ising model.
Our analyses provide a deeper understanding on the role of quantum information quantities for the dynamics of emergent phenomena reminiscent to systems in high-energy physics.
arXiv Detail & Related papers (2022-10-27T18:00:01Z) - Generation of photons from vacuum in cavity via time-modulation of a
qubit invisible to the field [0.0]
We find that tripartite entangled states with a small number of photons can be generated from the system ground state under resonant modulations.
We attest our approximate analytic results by numeric simulations and show that photon generation from vacuum persists in the presence of common dissipation mechanisms.
arXiv Detail & Related papers (2022-06-13T00:24:57Z) - Frequency combs with parity-protected cross-correlations from
dynamically modulated qubit arrays [117.44028458220427]
We develop a general theoretical framework to dynamically engineer quantum correlations in the frequency-comb emission from an array of superconducting qubits in a waveguide.
We demonstrate, that when the resonance of the two qubits are periodically modulated with a $pi$ phase shift, it is possible to realize simultaneous bunching and antibunching in cross-correlations of the scattered photons from different sidebands.
arXiv Detail & Related papers (2022-03-01T13:12:45Z) - Heisenberg treatment of multiphoton pulses in waveguide QED with
time-delayed feedback [62.997667081978825]
We propose a projection onto a complete set of states in the Hilbert space to decompose the multi-time correlations into single-time matrix elements.
We consider the paradigmatic example of a two-level system that couples to a semi-infinite waveguide and interacts with quantum light pulses.
arXiv Detail & Related papers (2021-11-04T12:29:25Z) - Two-photon resonance fluorescence of two interacting non-identical
quantum emitters [77.34726150561087]
We study a system of two interacting, non-indentical quantum emitters driven by a coherent field.
We show that the features imprinted by the two-photon dynamics into the spectrum of resonance fluorescence are particularly sensitive to changes in the distance between emitters.
This can be exploited for applications such as superresolution imaging of point-like sources.
arXiv Detail & Related papers (2021-06-04T16:13:01Z) - 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)
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.