arXiv · 2406.04971
Time-correlation Transduction in Strong-field Quantum Electrodynamics
Abstract
Recent developments in high-power ultrafast optical technology and emerging theoretical frameworks in strong-field quantum electrodynamics (SF-QED) are unveiling nuanced differentiations between the semi-classical and full quantum mechanical descriptions of physical systems. Here we present a computational investigation of a novel technique for attosecond optical sensing through time correlation transduction (TCT) by investigating high-harmonic generation (HHG) as a representative SF-QED process. TCT is an experimental method to capture photon-electron interactions at higher harmonic orders by temporarily correlating the emitted and driving photon fields. This approach enables resolving the dynamical behavior of optically-driven strong-field phenomena in quantum materials such as Two-dimensional Materials and Dirac Semimetals down to 10 attosecond temporal resolution to discover a full quantum explanation. Predicting and measuring the transition between perturbative and non-perturbative regimes with attosecond resolution can deepen the understanding of SF-QED such as HHG. As such, we find that TCT is a powerful method to pave the way toward the functional characterization of quantum matter.
Explore related subjects
Keep this discovery
Zairui Li, Wesley Sims, Mirali Seyed Shariatdoust, Gabriel Howell, Thomas A. Searles, Sergio Carbajo. 2024-06-07. Time-correlation Transduction in Strong-field Quantum Electrodynamics. https://arxiv.org/abs/2406.04971
Cite the original work for its findings. Save a collection to share your selection of sources.