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Marc J. J. Vrakking

Researcher at Fundamental Research on Matter Institute for Atomic and Molecular Physics

Publications -  280
Citations -  9373

Marc J. J. Vrakking is an academic researcher from Fundamental Research on Matter Institute for Atomic and Molecular Physics. The author has contributed to research in topics: Ionization & Attosecond. The author has an hindex of 45, co-authored 267 publications receiving 8129 citations. Previous affiliations of Marc J. J. Vrakking include University of Rostock & VU University Amsterdam.

Papers
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Probing ultrafast spin dynamics with high-harmonic magnetic circular dichroism spectroscopy

TL;DR: In this paper, a high-harmonic generation source was combined with a phase shifter to obtain circularly polarized XUV femtosecond pulses for ultrafast magnetization studies.
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Molecular movie of ultrafast coherent rotational dynamics of OCS

TL;DR: In this paper, the rotational wave packet of carbonylsulfide (OCS) molecules has been used to record very high-resolution and fidelity molecular movies over more than one and a half periods of the laser-induced rotational dynamics of OCS molecules.
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Soft X-ray Absorption Spectroscopy of Aqueous Solutions Using a Table-Top Femtosecond Soft X-ray Source.

TL;DR: The feasibility of soft X-ray absorption spectroscopy in the water window is demonstrated using a table-top laser-based approach with organic molecules and inorganic salts in aqueous solution and the roles of pulse stability and photon flux are discussed.
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Collisional enhancement of Rydberg lifetimes observed in vibrational wave packet experiments

TL;DR: In this paper, the authors used femtosecond pump-probe experiments on the vibrational wave packet dynamics of the I2(B) state, in which either detection of I+2 ions or zero-kinetic energy (ZEKE) electrons was used.
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Polarization gating and circularly-polarized high harmonic generation using plasmonic enhancement in metal nanostructures

TL;DR: The possibilities to utilize field enhancement by specifically designed metal nanostructures for the generation of single attosecond pulses using the polarization gating technique are investigated and the possibility to generate previously inaccessible high-harmonics with circular polarization is indicated.