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Session Overview
Session
TOM7 S3: Attosecond Science and Technology
Time:
Thursday, 12/Sept/2024:
8:45am - 10:15am

Session Chair: Mauro Nisoli, Politecnico di Milano, Italy
Location: A.2.1b


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Presentations
8:45am - 9:15am
Invited
ID: 122 / TOM7 S3: 1
TOM 7 Ultrafast Phenomena

Invited - New Perspectives for attosecond Science at Free Electron Lasers

Giuseppe Sansone

University of Freiburg, Germany

In my presentation, I will discuss the innovative prospectives presented by Free Electron Lasers (FELs) for attosecond science. Specifically, it will elucidate how attosecond metrology and spectroscopy can be implemented at seeded FELs by substituting the necessity for synchronization between the attosecond pulse train and the infrared laser pulse with a correlated examination of the single-shot photoelectron spectra.



9:15am - 9:30am
ID: 218 / TOM7 S3: 2
TOM 7 Ultrafast Phenomena

The role of crystal orientation in attosecond photoinjection dynamics in germanium

Matteo Talarico1, Nicola Di Palo1, Lyudmyla Adamska2, Simone Bonetti1, Giacomo Inzani1, Marta Arias Velasco3, Gian Luca Dolso1, Rocío Borrego-Varillas3, Mauro Nisoli1,3, Stefano Pittalis2, Carlo Andrea Rozzi2, Matteo Lucchini1,3

1Department of Physics, Politecnico di Milano, Piazza Leonardo da Vinci, 20133 Milano, Italy.; 2CNR - Istituto Nanoscienze, via Campi 213/A, I-41125 Modena, Italy.; 3Institute for Photonics and Nanotechnologies, IFN-CNR, 20133 Milano, Italy.

Ultrashort light pulses can be used to manipulate electronic and optical properties of solids at extreme temporal scales, paving the way to the study of ultrafast electron dynamics. In recent years, attosecond-based spectroscopic techniques have proved to be an instrumental tool in such studies. To this end, we investigated the effects of crystal orientation on ultrafast photoinjection dynamics in germanium using attosecond transient reflectance spectroscopy (ATRS) aided by time-dependent density functional theory (TD-DFT) calculations. Our results show that ATRS is sensitive to subtle changes in the transient reflectance due to crystal orientation, although carrier photoinjection in germanium is qualitatively robust against crystal rotation, displaying similar photoinjection processes and timings at two different crystal angles.



9:30am - 9:45am
ID: 266 / TOM7 S3: 3
TOM 7 Ultrafast Phenomena

High-order harmonic generation from ultrafast matter Talbot effect

Luis Plaja, Ana García-Cabrera, Carlos Hernández-García

Universidad de Salamanca, Spain

High-order harmonic spectroscopy is a robust method for probing electron dynamics under the influence of a driving field, capturing phenomena as brief as attoseconds. It relies on the extreme non-linear process of high-harmonic generation (HHG), where intense laser pulses are directed at a material, causing it to emit high-energy photons in harmonics of the laser frequency. In this contribution we explore the possibility to generate high-order harmonics from low-dimensional crystalline solids driven under grazing incidence. We demonstrate that, in this unconventional geometry, the electron wavefunction is ejected from the solid and, subsequently, redirected to it to generate harmonics. Most appealingly, we show that the crystal’s periodicity imprinted in the electron’s wavefunction introduces a revival dynamics closely connected with the matter temporal Talbot effect. These Talbot oscillations are ultrafast (< femtosecond) and leave a distinct signature in the high-frequency harmonic spectrum, in the form of structures extending beyond the main spectral cutoff.



9:45am - 10:00am
ID: 120 / TOM7 S3: 4
TOM 7 Ultrafast Phenomena

Modeling extreme ultraviolet attosecond pulses in modulated waveguides

Valer Tosa1, Ana Maria Mihaela Gherman1, Istvan Ferenc Toth1, Rebeca Martinez Vazquez2, Anna Gabriela Ciriolo2, Alessio Nistico3, Salvatore Stagira3

1National Institute for Research and Development of Isotopic and Molecular Technologies, Romania; 2Institute for Photonics and Nanotechnologies, National Research Council, Milano, Italy; 3Politecnico di Milano, Physics Department, Milano, Italy

We explore via numerical modeling the generation of very short photon wavelengths in hollow core waveguides (HCW) filled with He gas at high pressures. Propagation of femtosecond driving pulses is first solved using a split-step method and tested against other methods. The propagation along the HCW reveals mode beating seen in quasi-periodic oscillations of the field intensity and phase which in turn will determine the single atom response to the field.

We explore both cylindrical and conical HCW in which the guide diameter varies along the propagation direction. This second configuration generates very high harmonic orders in a regime of quasi-phase matching. We found three spectral ranges which show amplification, at 3.5, 7.6, and 11-13 nm, which are of great interest given their practical applications in spectroscopy, XUV metrology and photolithography.



10:00am - 10:15am
ID: 290 / TOM7 S3: 5
TOM 7 Ultrafast Phenomena

A UV-XUV attosecond beamline with few-femtosecond tunable ultraviolet pump pulses

Lorenzo Colaizzi1, Daniele Mocci1, Marta Pini1, Nikoleta Kotsina2, Joleik Nordmann2, Chris Brahms2, John Travers2, Matteo Lucchini1,3, Rocio Borrego-Varillas1,3, Maurizio Reduzzi1, Mauro Nisoli1,3

1Department of Physics, Politecnico di Milano, 20133 Milano, Italy; 2School of Engineering and Physical Sciences, Heriot-Watt University, Edinburgh, EH14 4AS, United Kingdom; 3Institute for Photonics and Nanotechnologies, IFN-CNR, 20133 Milano, Italy

Ultrafast charge transfer processes in organic materials which occur in organic materials are fundamental for advancing solar energy conversion technologies. Understanding these phenomena on a short time scale induced by visible and ultraviolet (UV) light is crucial for future control and engineering of these molecules. Here, we present a novel attosecond beamline featuring Resonant Dispersive Wave emission for generating sub-3 fs tunable pump pulses in the UV region and High Harmonic Generation (HHG) in a semi-infinite gas cell for isolated attosecond pulse generation in the Extreme ultraviolet range.