Limitations of an approximative phase-space description in strong-field quantum optics
- URL: http://arxiv.org/abs/2602.04370v1
- Date: Wed, 04 Feb 2026 09:47:11 GMT
- Title: Limitations of an approximative phase-space description in strong-field quantum optics
- Authors: Rasmus Vesterager Gothelf, Lars Bojer Madsen, Christian Saugbjerg Lange,
- Abstract summary: We introduce this approximative phase-space description and discuss its accuracy.<n>We find that it mischaracterizes the quantum optical properties of the driving laser by making it an incoherent mixture of classical states.<n>Our results show that using this approximative phase-space description can mischaracterize quantum optical observables.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: In recent years, strong-field processes such as high-order harmonic generation (HHG) and above-threshold ionization driven by nonclassical states of light have become an increasingly popular field of study. The theoretical modeling of these processes often applies an approximate phase-space expansion of the nonclassical driving field in terms of coherent states, which has been shown to accurately predict the harmonic spectrum. However, its accuracy for the computation of quantum optical observables like the degree of squeezing and photon statistics has not been thoroughly considered. In this work, we introduce this approximative phase-space description and discuss its accuracy, and we find that it mischaracterizes the quantum optical properties of the driving laser by making it an incoherent mixture of classical states. We further show that this error in the driving field description maps onto the light emitted from HHG, as neither sub-Poissonian photon statistics nor quadrature squeezing below vacuum fluctuations can be captured by the approximative phase-space description. Lastly, to benchmark the approximative phase-space description, we consider the quantum HHG from a one-band model, which yields an exact analytical solution. Using the approximative phase-space representation with this specific model, we find a small quantitative error in the quadrature variance of the emitted field that scales with pulse duration and emitter density. Our results show that using this approximative phase-space description can mischaracterize quantum optical observables. Attributing physical meaning to such results should therefore be accompanied by a quantitative analysis of the error.
Related papers
- High-Order Harmonic Generation with Beyond-Semiclassical Emitter Dynamics: A Strong-Field Quantum Optical Heisenberg Picture Approach [0.0]
We develop an accurately controlled perturbative expansion of the time-evolution operator in the Heisenberg picture.<n>We derive beyond-semiclassical corrections to the emitter dynamics due to the coupling to the quantized electromagnetic field.<n>We find that the degree of squeezing increases with the number of emitters, whereas the photon statistics approaches a classical Poissonian distribution in the many-emitter limit.
arXiv Detail & Related papers (2025-12-16T08:06:57Z) - High-harmonic generation driven by temporal-mode quantum states of light [0.0]
We develop a theoretical framework for high-harmonic generation driven by quantum states of light based on a temporal-mode expansion of the electromagnetic field.<n>We show that free-space HHG driven by any quantum state of light is accurately described by averaging semi-classical calculations.<n>We discuss nanophotonic environments with ultrasmall mode volumes as potential platforms where few-photon strong-field processes could exhibit genuine quantum signatures.
arXiv Detail & Related papers (2025-12-07T00:04:46Z) - Photon-mediated interactions and dynamics of coherently driven quantum emitters in complex photonic environments [41.94295877935867]
Born-Markov master equations have been extensively employed in the description of quantum optical phenomena.<n>We benchmark this modeling approach for the quantum dynamics of the emitter pair against exact calculations based on a macroscopic field quantization formalism.<n>Our analysis reveals four distinct regimes of laser driving and frequency splitting that lead to markedly different levels of accuracy in the effective model.
arXiv Detail & Related papers (2025-08-01T09:38:07Z) - Enhanced quantum phase estimation with $q$-deformed nonideal nonclassical light [0.0]
We investigate quantum phase estimation in a Mach-Zehnder interferometer using q-deformed photon states.<n>We compute the quantum and classical Fisher information and perform Bayesian inference on simulated detector data.
arXiv Detail & Related papers (2025-06-03T12:50:40Z) - Matrix phase-space representations in quantum optics [44.99833362998488]
We introduce matrix quantum phase-space distributions.<n>These extend the idea of a quantum phase-space representation via projections onto a density matrix of global symmetry variables.<n>We demonstrate improvements in sampling error by a factor of 1000 or more compared to unprojected methods, which are infeasible for such cases.
arXiv Detail & Related papers (2025-03-17T02:33:14Z) - Hierarchy of approximations for describing quantum light from high-harmonic generation: A Fermi-Hubbard model study [0.0]
We present a hierarchy of approximations for the equations of motion for the photonic state.
We find that for the typical experimental situation of weak quantized-light-matter-coupling constant and at intensities well below the damage threshold, an explicit expression for the generated quantum light captures the high-harmonic spectrum quantitatively.
arXiv Detail & Related papers (2024-10-25T12:59:29Z) - Pulse characterization at the single-photon level through chronocyclic $Q$-function measurements [2.193021519015704]
We demonstrate the retrieval of the complex spectral amplitude of single-photon-level light pulses through measuring their chronocyclic $Q-$function.
Our approach draws inspiration from quantum state tomography by exploiting the analogy between quadrature phase space and time-frequency phase space.
arXiv Detail & Related papers (2024-08-22T11:30:49Z) - Real-time dynamics of false vacuum decay [49.1574468325115]
We investigate false vacuum decay of a relativistic scalar field in the metastable minimum of an asymmetric double-well potential.
We employ the non-perturbative framework of the two-particle irreducible (2PI) quantum effective action at next-to-leading order in a large-N expansion.
arXiv Detail & Related papers (2023-10-06T12:44:48Z) - Numerical variational simulations of quantum phase transitions in the
sub-Ohmic spin-boson model with multiple polaron ansatz [17.26854451734512]
Dissipative quantum phase transitions in the sub-Ohmic spin-boson model are numerically studied.
quantum-to-classical correspondence is fully confirmed over the entire sub-Ohmic range.
Mean-field and non-mean-field critical behaviors are found in the deep and shallow sub-Ohmic regimes.
arXiv Detail & Related papers (2023-09-02T02:23:54Z) - Solving and Completing the Rabi-Stark Model in the Ultrastrong Coupling
Regime [10.645443650115086]
We derive the analytical energy spectra in the ultrastrong coupling regime.
We observe a regular "staircase" pattern in the mean photon number of the ground state.
We analytically determine the phase boundary, which slightly differs from that in the original Rabi-Stark model.
arXiv Detail & Related papers (2023-08-16T03:01:19Z) - Quantum metrology using time-frequency as quantum continuous variables:
Resources, sub shot-noise precision and phase space representation [0.0]
We study the role of the electromagnetic field's frequency in time precision measurements using single photons as a paradigmatic system.
We show that it is possible to observe a quadratic scaling using quantum mode correlations only and explicit the mathematical expression of states saturating the Heisenberg limit.
arXiv Detail & Related papers (2022-10-11T15:02:33Z) - Conditional preparation of non-Gaussian quantum optical states by
mesoscopic measurement [62.997667081978825]
Non-Gaussian states of an optical field are important as a proposed resource in quantum information applications.
We propose a novel approach involving displacement of the ancilla field into the regime where mesoscopic detectors can be used.
We conclude that states with strong Wigner negativity can be prepared at high rates by this technique under experimentally attainable conditions.
arXiv Detail & Related papers (2021-03-29T16:59:18Z) - The role of boundary conditions in quantum computations of scattering
observables [58.720142291102135]
Quantum computing may offer the opportunity to simulate strongly-interacting field theories, such as quantum chromodynamics, with physical time evolution.
As with present-day calculations, quantum computation strategies still require the restriction to a finite system size.
We quantify the volume effects for various $1+1$D Minkowski-signature quantities and show that these can be a significant source of systematic uncertainty.
arXiv Detail & Related papers (2020-07-01T17:43:11Z) - In and out of equilibrium quantum metrology with mean-field quantum
criticality [68.8204255655161]
We study the influence that collective transition phenomena have on quantum metrological protocols.
The single spherical quantum spin (SQS) serves as stereotypical toy model that allows analytical insights on a mean-field level.
arXiv Detail & Related papers (2020-01-09T19:20:42Z)
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.