Unified Light-Matter Floquet Theory and its Application to Quantum Communication
- URL: http://arxiv.org/abs/2207.08558v3
- Date: Mon, 1 Apr 2024 05:29:52 GMT
- Title: Unified Light-Matter Floquet Theory and its Application to Quantum Communication
- Authors: Georg Engelhardt, Sayan Choudhury, W. Vincent Liu,
- Abstract summary: We show that photon-resolved Floquet theory" (PRFT) is based on two-point tomographic measurements.
PRFT predicts the generation of macroscopic light-matter entanglement when atoms interact with multimode electromagnetic fields.
Our results pave the way for the design of efficient quantum memories and quantum operations.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Periodically-driven quantum systems can exhibit a plethora of intriguing non-equilibrium phenomena that can be analyzed using Floquet theory. Naturally, Floquet theory is employed to describe the dynamics of atoms interacting with intense laser fields. However, this semiclassical analysis can not account for quantum-optical phenomena that rely on the quantized nature of light. In this paper, we take a significant step to go beyond the semiclassical description of atom-photon coupled systems by unifying Floquet theory with quantum optics using the framework of full-counting statistics. This is achieved by introducing counting fields that keep track of the photonic dynamics. This formalism, which we dub ``photon-resolved Floquet theory" (PRFT), is based on two-point tomographic measurements, instead of the two-point projective measurements used in standard full-counting statistics. Strikingly, the PRFT predicts the generation of macroscopic light-matter entanglement when atoms interact with multimode electromagnetic fields, thereby leading to complete decoherence of the atomic subsystem in the basis of the Floquet states. This decoherence occurs rapidly in the optical frequency regime, but is negligible in the radio frequency regime. Our results thus pave the way for the design of efficient quantum memories and quantum operations. Finally, employing the PRFT, we propose a quantum communication protocol that can significantly outperform the state-of-art few-photon protocols by two orders of magnitude or better. The PRFT potentially leads to insights in various Floquet settings including spectroscopy, thermodynamics, quantum metrology, and quantum simulations.
Related papers
- Photon-resolved Floquet theory I: Full-Counting statistics of the driving field in Floquet systems [0.0]
Photon-resolved Floquet theory (PRFT) developed to predict the statistics of the photon flux between several coherent driving modes.
PRFT will pave the way for improved quantum sensing methods, for spectroscopic quantum sensing protocols, reflectometry in semiconductor nanostructures and other applications.
arXiv Detail & Related papers (2024-07-25T03:07:40Z) - 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) - A Theory of Quantum Jumps [44.99833362998488]
We study fluorescence and the phenomenon of quantum jumps'' in idealized models of atoms coupled to the quantized electromagnetic field.
Our results amount to a derivation of the fundamental randomness in the quantum-mechanical description of microscopic systems.
arXiv Detail & Related papers (2024-04-16T11:00:46Z) - Comprehensive scheme for identifying defects in solid-state quantum
systems [0.0]
A solid-state quantum emitter is one of the indispensable components for optical quantum technologies.
We demonstrate the calculation of the complete optical fingerprints of quantum emitters in hexagonal boron nitride.
We apply this approach to predict the suitability for using the emitters in specific quantum applications.
arXiv Detail & Related papers (2023-05-29T05:28:27Z) - Few-photon transport via a multimode nonlinear cavity: theory and
applications [0.0]
We study few-photon transport via a waveguide-coupled multimode optical cavity with second-order bulk nonlinearity.
Our results might lead to significant applications of quantum photonic circuits in all-optical quantum information processing and quantum network protocols.
arXiv Detail & Related papers (2022-09-08T15:28:05Z) - Multiphoton Quantum van Cittert-Zernike Theorem [0.0]
We introduce the quantum van Cittert-Zernike theorem to describe the scattering and interference effects of propagating multiphoton systems.
We show that conditional measurements may enable the all-optical preparation of multiphoton systems with attenuated quantum statistics below the shot-noise limit.
arXiv Detail & Related papers (2022-02-15T01:14:49Z) - Photon-mediated Stroboscopic Quantum Simulation of a $\mathbb{Z}_{2}$
Lattice Gauge Theory [58.720142291102135]
Quantum simulation of lattice gauge theories (LGTs) aims at tackling non-perturbative particle and condensed matter physics.
One of the current challenges is to go beyond 1+1 dimensions, where four-body (plaquette) interactions, not contained naturally in quantum simulating devices, appear.
We show how to prepare the ground state and measure Wilson loops using state-of-the-art techniques in atomic physics.
arXiv Detail & Related papers (2021-07-27T18:10:08Z) - Revealing higher-order light and matter energy exchanges using quantum
trajectories in ultrastrong coupling [0.0]
We extend the formalism of quantum trajectories to open quantum systems with ultrastrong coupling.
We analyze the impact of the chosen unravelling (i.e., how one collects the output field of the system) for the quantum trajectories.
arXiv Detail & Related papers (2021-07-19T11:22:12Z) - Waveguide quantum electrodynamics: collective radiance and photon-photon
correlations [151.77380156599398]
Quantum electrodynamics deals with the interaction of photons propagating in a waveguide with localized quantum emitters.
We focus on guided photons and ordered arrays, leading to super- and sub-radiant states, bound photon states and quantum correlations with promising quantum information applications.
arXiv Detail & Related papers (2021-03-11T17:49:52Z) - Quantum Hall phase emerging in an array of atoms interacting with
photons [101.18253437732933]
Topological quantum phases underpin many concepts of modern physics.
Here, we reveal that the quantum Hall phase with topological edge states, spectral Landau levels and Hofstadter butterfly can emerge in a simple quantum system.
Such systems, arrays of two-level atoms (qubits) coupled to light being described by the classical Dicke model, have recently been realized in experiments with cold atoms and superconducting qubits.
arXiv Detail & Related papers (2020-03-18T14:56:39Z) - Probing the Universality of Topological Defect Formation in a Quantum
Annealer: Kibble-Zurek Mechanism and Beyond [46.39654665163597]
We report on experimental tests of topological defect formation via the one-dimensional transverse-field Ising model.
We find that the quantum simulator results can indeed be explained by the KZM for open-system quantum dynamics with phase-flip errors.
This implies that the theoretical predictions of the generalized KZM theory, which assumes isolation from the environment, applies beyond its original scope to an open system.
arXiv Detail & Related papers (2020-01-31T02:55:35Z)
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.