Phase control of interfering stimulated Raman pathways in the XUV regime

Abstract Coherent control uses interference between quantum pathways to enhance or suppress transitions to a target quantum state. In stimulated Raman excitation, such control can be achieved through interference between two indistinguishable pathways connecting the same initial and final states, with the relative phase between the pathways modulating the population transfer to the final state. Extending this strategy to the extreme ultraviolet (XUV) and X-ray regimes would enable control of ultrafast electronic dynamics and site-selective core excitations. However, Raman coupling at short wavelengths competes with photoionization and intermediate-state decay, whereas intense fields with stable and adjustable relative phases remain difficult to produce. Here we use two-colour pulses from a seeded coherent free-electron laser to excite helium from its ground state to a bound metastable state via stimulated XUV Raman excitation. We implement phase-coherent control by creating two interfering Raman pathways through the ionization continuum and modulate the transferred population by varying their relative phases. Blocking one pathway removes the modulation, confirming its interferometric origin, and time-dependent Schrödinger equation calculations reproduce the measured phase dependence. Our results establish phase-controlled stimulated Raman excitation in the XUV regime, providing a strategy for the coherent control of atomic and molecular processes at short wavelengths.

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Publication Details

Journal
Nature Photonics
Published
2026-10-09
DOI
https://doi.org/10.1038/s41566-026-02024-9
Citations
1
Primary Topic
Laser-Matter Interactions and Applications
Type
article
Field-Weighted Citation Impact
2.85
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article

Phase control of interfering stimulated Raman pathways in the XUV regime

Stefan Eisebitt, Oksana Plekan, Johan Söderström, Michele Di Fraia et al.
1 citations
Nature Photonics
Laser-Matter Interactions and Applications
2.85
article

Phase control of interfering stimulated Raman pathways in the XUV regime

Stefan Eisebitt, Oksana Plekan, Johan Söderström, Michele Di Fraia, Nitish Pal, Giovanni Perosa, Stefanos Carlström, Michele Manfredda, U. Eichmann, Jan‐Erik Rubensson, Matthieu Génévriez, Alberto Simoncig, Carlo Callegari, Jochen Mikosch, E. Allaria, Alexander Darius Brynes, Serguei Patchkovskii
article en
1 citations

Abstract

Abstract Coherent control uses interference between quantum pathways to enhance or suppress transitions to a target quantum state. In stimulated Raman excitation, such control can be achieved through interference between two indistinguishable pathways connecting the same initial and final states, with the relative phase between the pathways modulating the population transfer to the final state. Extending this strategy to the extreme ultraviolet (XUV) and X-ray regimes would enable control of ultrafast electronic dynamics and site-selective core excitations. However, Raman coupling at short wavelengths competes with photoionization and intermediate-state decay, whereas intense fields with stable and adjustable relative phases remain difficult to produce. Here we use two-colour pulses from a seeded coherent free-electron laser to excite helium from its ground state to a bound metastable state via stimulated XUV Raman excitation. We implement phase-coherent control by creating two interfering Raman pathways through the ionization continuum and modulate the transferred population by varying their relative phases. Blocking one pathway removes the modulation, confirming its interferometric origin, and time-dependent Schrödinger equation calculations reproduce the measured phase dependence. Our results establish phase-controlled stimulated Raman excitation in the XUV regime, providing a strategy for the coherent control of atomic and molecular processes at short wavelengths.

Nature Photonics
University of Kassel (DE), Uppsala University (SE), Elettra-Sincrotrone Trieste S.C.p.A. (IT), Istituto Officina dei Materiali (IT), Max-Born-Institute for Nonlinear Optics and Short Pulse Spectroscopy (DE), Technische Universität Berlin (DE), UCLouvain (BE)
Openalex Percentile: Top 7%
Laser-Matter Interactions and Applications
2.85
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