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Isabella Floss

Researcher at Vienna University of Technology

Publications -  11
Citations -  379

Isabella Floss is an academic researcher from Vienna University of Technology. The author has contributed to research in topics: Attosecond & Laser. The author has an hindex of 5, co-authored 10 publications receiving 222 citations.

Papers
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Ab initio multiscale simulation of high-order harmonic generation in solids

TL;DR: In this article, a multiscale simulation of solid-state high-order-harmonic generation was performed for dielectrics and it was shown that mesoscopic effects of the extended system, in particular the realistic sampling of the entire Brillouin zone, the pulse propagation in the dense medium, and the inhomogeneous illumination of the crystal, have a strong effect on the harmonic spectra.
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SALMON: Scalable Ab-initio Light-Matter simulator for Optics and Nanoscience

TL;DR: An overview of the capabilities of the SALMON software package is provided, showing several sample calculations of the real-time, real-space calculation of the electron dynamics induced in molecules and solids by an external electric field solving the time-dependent Kohn–Sham equation.
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Attosecond optoelectronic field measurement in solids

TL;DR: A nonlinear photoconductive sampling method to measure electric field wave-forms in the infrared, visible and ultraviolet spectral ranges is demonstrated, providing sub-fs temporal precision in reconstructing the sub-cycle electronic response of a solid state structure.
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Incorporating decoherence into solid-state time-dependent density functional theory

TL;DR: In this paper, an open-quantum system (OQS) extension of TDDFT was proposed to account for dephasing and decoherence due to electron-phonon or defect scattering.
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Controlling ultrafast currents by the nonlinear photogalvanic effect

TL;DR: In this paper, the effect of broken inversion symmetry on the generation and control of ultrafast currents in a transparent dielectric (SiO2) by strong femtosecond optical laser pulses was investigated.