Time-resolved momentum microscopy with fs-XUV photons at high repetition rates with flexible energy and time resolution

K.J. Schiller, L. Sternemann, M. Stupar, A. Omar, M. Hoffmann, J.E. Nitschke, V. Mischke, D.M. Janas, S. Ponzoni, G. Zamborlini, C.J. Saraceno, M. Cinchetti, Scientific Reports 15 (2025).

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Journal Article | Published | English
Author
Schiller, Karl Jakob; Sternemann, Lasse; Stupar, Matija; Omar, Alan; Hoffmann, Martin; Nitschke, Jonah Elias; Mischke, Valentin; Janas, David Maximilian; Ponzoni, Stefano; Zamborlini, Giovanni; Saraceno, Clara Jody; Cinchetti, Mirko
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Abstract
<jats:title>Abstract</jats:title> <jats:p>Time-resolved momentum microscopy is an emerging technique based on photoelectron spectroscopy for characterizing ultrafast electron dynamics and the out-of-equilibrium electronic structure of materials in the entire Brillouin zone with high efficiency. In this article, we introduce a setup for time-resolved momentum microscopy based on an energy-filtered momentum microscope coupled to a custom-made high-harmonic generation photon source driven by a multi-100 kHz commercial Yb-ultrafast laser that delivers fs pulses in the extreme ultraviolet range. The laser setup includes a nonlinear pulse compression stage employing spectral broadening in a Herriott-type bulk-based multi-pass cell. This element allows flexible tuning of the driving pulse duration, providing a versatile time-resolved momentum microscopy setup featuring two operational modes designed to enhance either the energy or time resolution. We show the capabilities of the system by tracing ultrafast electron dynamics in the conduction band valleys of a bulk crystal of the 2D semiconductor WS<jats:sub>2</jats:sub>. Using uncompressed driving laser pulses, we demonstrate an energy resolution better than (107 ± 2) meV, while compressed pulses lead to a time resolution better than (48.8 ± 17) fs.</jats:p>
Publishing Year
Journal Title
Scientific Reports
Volume
15
Issue
1
Article Number
3611
ISSN
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Schiller KJ, Sternemann L, Stupar M, et al. Time-resolved momentum microscopy with fs-XUV photons at high repetition rates with flexible energy and time resolution. Scientific Reports. 2025;15(1). doi:10.1038/s41598-025-86660-1
Schiller, K. J., Sternemann, L., Stupar, M., Omar, A., Hoffmann, M., Nitschke, J. E., Mischke, V., Janas, D. M., Ponzoni, S., Zamborlini, G., Saraceno, C. J., & Cinchetti, M. (2025). Time-resolved momentum microscopy with fs-XUV photons at high repetition rates with flexible energy and time resolution. Scientific Reports, 15(1), Article 3611. https://doi.org/10.1038/s41598-025-86660-1
@article{Schiller_Sternemann_Stupar_Omar_Hoffmann_Nitschke_Mischke_Janas_Ponzoni_Zamborlini_et al._2025, title={Time-resolved momentum microscopy with fs-XUV photons at high repetition rates with flexible energy and time resolution}, volume={15}, DOI={10.1038/s41598-025-86660-1}, number={13611}, journal={Scientific Reports}, publisher={Springer Science and Business Media LLC}, author={Schiller, Karl Jakob and Sternemann, Lasse and Stupar, Matija and Omar, Alan and Hoffmann, Martin and Nitschke, Jonah Elias and Mischke, Valentin and Janas, David Maximilian and Ponzoni, Stefano and Zamborlini, Giovanni and et al.}, year={2025} }
Schiller, Karl Jakob, Lasse Sternemann, Matija Stupar, Alan Omar, Martin Hoffmann, Jonah Elias Nitschke, Valentin Mischke, et al. “Time-Resolved Momentum Microscopy with Fs-XUV Photons at High Repetition Rates with Flexible Energy and Time Resolution.” Scientific Reports 15, no. 1 (2025). https://doi.org/10.1038/s41598-025-86660-1.
K. J. Schiller et al., “Time-resolved momentum microscopy with fs-XUV photons at high repetition rates with flexible energy and time resolution,” Scientific Reports, vol. 15, no. 1, Art. no. 3611, 2025, doi: 10.1038/s41598-025-86660-1.
Schiller, Karl Jakob, et al. “Time-Resolved Momentum Microscopy with Fs-XUV Photons at High Repetition Rates with Flexible Energy and Time Resolution.” Scientific Reports, vol. 15, no. 1, 3611, Springer Science and Business Media LLC, 2025, doi:10.1038/s41598-025-86660-1.

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