Tunneling driven by quantum light described via field Bohmian trajectories
Sangwon Kim, Seongjin Ahn, Denis V. Seletskiy, and Andrey S. Moskalenko

TL;DR
This paper introduces a Bohmian trajectory-based theoretical framework to describe tunneling driven by quantum light, capturing quantum statistics effects and providing insights into electron dynamics under bright squeezed vacuum illumination.
Contribution
It develops a novel Bohmian field approach to model quantum light-driven tunneling, extending classical quasiclassical theories to include quantum statistical effects.
Findings
Bohmian trajectories accurately describe electron tunneling under quantum light.
The framework captures the transition from multiphoton to direct tunneling regimes.
Application to BSV-induced electron transport demonstrates the model's effectiveness.
Abstract
Recent realization of an intense quantum light, namely bright squeezed vacuum, opened a new perspective on quantum light-matter interaction. Several theoretical works have appeared based on coherent state expansions of quantum state of light to investigate non-classical driving of high-harmonic generation in atomic gases and solids, or free-electron dynamics, but their predictions surprisingly coincide with what one could expect from essentially classical interpretations of the light statistics. A deeper theoretical insight into the underlying physics is necessary for understanding of observed experimental findings and predicting emerging effects relying on this new configuration. Here we present a theoretical framework to describe tunneling driven by quantum light, where the properties of such light are captured by a statistical ensemble of classical fields via a hydrodynamic, also…
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Taxonomy
TopicsQuantum Mechanics and Applications · Quantum Information and Cryptography · Quantum optics and atomic interactions
