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Research PaperResearchia:202606.24077

Two-Electron Effects Extend High-Harmonic Generation into the keV Regime

Isobel McSweeney

Abstract

Two-electron processes can generate high harmonics beyond the conventional single-active-electron cutoff. Motivated by recent experimental evidence of an extended secondary plateau in the helium high-harmonic spectrum [S. Wang et al, Optica, (2023); S. Wang et al, In Print in Nature Photon., (2026)], we present a two-electron generalisation of the strong-field approximation. We analyse the resulting expressions using the saddle-point method and determine the extended cutoff. We find good agreeme...

Submitted: June 24, 2026Subjects: Quantum Physics; Quantum Computing

Description / Details

Two-electron processes can generate high harmonics beyond the conventional single-active-electron cutoff. Motivated by recent experimental evidence of an extended secondary plateau in the helium high-harmonic spectrum [S. Wang et al, Optica, (2023); S. Wang et al, In Print in Nature Photon., (2026)], we present a two-electron generalisation of the strong-field approximation. We analyse the resulting expressions using the saddle-point method and determine the extended cutoff. We find good agreement with classical predictions of cutoff scalings of 4.74.7 and 5.55.5 times the ponderomotive energy, which significantly exceed the established single-electron scaling of 3.17. We calculate high-harmonic spectra generated via a two-electron process in helium atoms driven by an intense few-cycle infrared laser pulse. Our results demonstrate that the harmonic spectrum extends far beyond the water window, reaching photon energies up to β‰ˆ1.2 keV\approx 1.2\,\mathrm{keV} in the soft x-ray region. The large spectral bandwidth can support the generation of sub-attosecond soft x-ray pulses, which are of particular interest for probing ultrafast dynamics across matter, including applications in core-level spectroscopy and biological imaging.


Source: arXiv:2606.24765v1 - http://arxiv.org/abs/2606.24765v1 PDF: https://arxiv.org/pdf/2606.24765v1 Original Link: http://arxiv.org/abs/2606.24765v1

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Date:
Jun 24, 2026
Topic:
Quantum Computing
Area:
Quantum Physics
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