Extreme electrodynamics in time-varying media
M. Scalora, M. A. Vincenti, D. de Ceglia, N. Akozbek, M. Ferrera, C., Rizza, A. Al\`u, N. Litchinitser, C. Cojocaru, J. Trull

TL;DR
This paper investigates the complex pump-probe dynamics in time-varying optical media, revealing new ultra-fast phenomena and challenging conventional models, with implications for attosecond science and integrated photonics.
Contribution
It introduces a hydrodynamic-Maxwell approach that accounts for intricate pump-probe interactions, providing a more accurate description of ultrafast optical behavior in nonlinear media.
Findings
Unveils new pump-probe interaction dynamics.
Demonstrates potential for attosecond pulse compression.
Challenges traditional local refractive index models.
Abstract
Abrupt time variations of the properties of optical materials have been at the center of intense research efforts in recent years, with the prospect of enabling extreme wave transformations and of leveraging time as a degree of freedom for wave control. While the most viable approach to yield ultrafast variations of the optical material response is through optical pumping of nonlinear media, the complex dynamics in these systems are not yet fully understood. Here, as a relevant case study, we rigorously investigate the pump-probe dynamics in a 310nm-thick transparent conductive oxide etalon, using a weak 40 femtosecond probe and a pump that displays peak power densities in the TW/cm^2 range with a duration of a few femtoseconds. We examine the pump-probe interaction using a hydrodynamic-Maxwell approach that accounts for diffraction, self-focusing and -defocusing, self- and cross-phase…
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Taxonomy
TopicsGeophysics and Sensor Technology · Mechanical and Optical Resonators · Advanced Fiber Optic Sensors
