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Research PaperResearchia:202604.23038

Attosecond Nonlinear Quantum Electrodynamics in Laser-Driven Plasmas via Two-Photon Synchrotron Emission

Vedin Dewan

Abstract

Ultrafast strong-field laser--plasma physics is shown to offer a promising framework for relativistic nonlinear quantum electrodynamics (QED). As one of its key advantages, this approach to relativistic nonlinear QED does not require an external beam of relativistic particles. Instead, high-energy electrons are produced in this setting as a part of ultrafast strong-field laser--plasma interactions. An intense ultrashort laser pulse generates and accelerates dense electron bunches to relativistic...

Submitted: April 23, 2026Subjects: Quantum Physics; Quantum Computing

Description / Details

Ultrafast strong-field laser--plasma physics is shown to offer a promising framework for relativistic nonlinear quantum electrodynamics (QED). As one of its key advantages, this approach to relativistic nonlinear QED does not require an external beam of relativistic particles. Instead, high-energy electrons are produced in this setting as a part of ultrafast strong-field laser--plasma interactions. An intense ultrashort laser pulse generates and accelerates dense electron bunches to relativistic energies, giving rise to photon-pair emission confined to the nanometer scale in space and the attosecond scale in time. As a lowest-order nonlinear QED process, relativistic electrons in laser-driven plasmas are shown to give rise to attosecond bursts of two-photon emission, providing an ultrabroadband source of correlated photon pairs. As a physically insightful estimate, the rate of this two-photon emission is expressed via a product α2γωturn α^2 γω_{turn}, where αα is the fine-structure constant, γγ is the Lorentz factor, and ωturn ω_{turn} is the local relativistic curvature frequency. Photon pairs with strongest correlations, providing a resource for photon entanglement, are emitted at a much lower rate, estimated as α2γ2ωturnE/ES α^2 γ^2 ω_{turn} E_{\perp} /E_S, where EE_{\perp} is the laser electromagnetic field, determining the transverse Lorentz force, and ESE_S is the Schwinger critical field. Our study offers a clear guidance on how quantum aspects of laser-driven relativistic plasma electrodynamics can be isolated from their classical counterparts, enabling a physically justifiable approach to the analysis of nonlinear QED phenomena in complex laser--plasma interactions driven by ultrashort high-intensity laser pulses.


Source: arXiv:2604.20672v1 - http://arxiv.org/abs/2604.20672v1 PDF: https://arxiv.org/pdf/2604.20672v1 Original Link: http://arxiv.org/abs/2604.20672v1

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Date:
Apr 23, 2026
Topic:
Quantum Computing
Area:
Quantum Physics
Comments:
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