A matter-wave Fabry-Pérot cavity in the ultrastrong driving regime

Fuente: arXiv
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Main Authors: Tanlimco, Jeremy L., Nolasco-Martinez, Eber, Chai, Xiao, Halawani, S. Nicole, Zhu, Eric, Martin, Ivar, Weld, David M.
Format: Preprint
Published: 2026
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author Tanlimco, Jeremy L.
Nolasco-Martinez, Eber
Chai, Xiao
Halawani, S. Nicole
Zhu, Eric
Martin, Ivar
Weld, David M.
author_facet Tanlimco, Jeremy L.
Nolasco-Martinez, Eber
Chai, Xiao
Halawani, S. Nicole
Zhu, Eric
Martin, Ivar
Weld, David M.
contents When the length of an optical cavity is modulated, theory predicts exponential concentration of energy around particular space-time trajectories. Viewed stroboscopically, photons in such a driven cavity propagate as if in a curved spacetime, with black hole and white hole event horizons corresponding to unstable and stable fixed points of the evolution. Such phenomena have resisted direct experimental realization due to the difficulty of relativistically accelerating massive cavity mirrors. We report results of an experiment which overcomes this limitation by exchanging the roles of light and matter. A matter wave endowed with quasi-relativistic dispersion is confined between two barriers made of light, one of which is periodically translated at speeds comparable to the matter wave group velocity. In this strongly-modulated cavity we observe the emergence of the predicted bright and dark fixed point trajectories, and demonstrate that changing the modulation waveform can vary the number of fixed points and exchange their stability character. We observe signatures of nontrivial dynamics beyond those predicted for photons, and attribute them to residual curvature in the dispersion relation. In addition to experimentally realizing and characterizing cavity dynamics in the ultra-strong driving regime, these results point the way to implementations of related dynamics in electro-optic materials, with potential applications in pulse generation and signal compression.
format Preprint
id arxiv_https___arxiv_org_abs_2601_21122
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle A matter-wave Fabry-Pérot cavity in the ultrastrong driving regime
Tanlimco, Jeremy L.
Nolasco-Martinez, Eber
Chai, Xiao
Halawani, S. Nicole
Zhu, Eric
Martin, Ivar
Weld, David M.
Quantum Gases
General Relativity and Quantum Cosmology
Atomic Physics
Optics
When the length of an optical cavity is modulated, theory predicts exponential concentration of energy around particular space-time trajectories. Viewed stroboscopically, photons in such a driven cavity propagate as if in a curved spacetime, with black hole and white hole event horizons corresponding to unstable and stable fixed points of the evolution. Such phenomena have resisted direct experimental realization due to the difficulty of relativistically accelerating massive cavity mirrors. We report results of an experiment which overcomes this limitation by exchanging the roles of light and matter. A matter wave endowed with quasi-relativistic dispersion is confined between two barriers made of light, one of which is periodically translated at speeds comparable to the matter wave group velocity. In this strongly-modulated cavity we observe the emergence of the predicted bright and dark fixed point trajectories, and demonstrate that changing the modulation waveform can vary the number of fixed points and exchange their stability character. We observe signatures of nontrivial dynamics beyond those predicted for photons, and attribute them to residual curvature in the dispersion relation. In addition to experimentally realizing and characterizing cavity dynamics in the ultra-strong driving regime, these results point the way to implementations of related dynamics in electro-optic materials, with potential applications in pulse generation and signal compression.
title A matter-wave Fabry-Pérot cavity in the ultrastrong driving regime
topic Quantum Gases
General Relativity and Quantum Cosmology
Atomic Physics
Optics
url https://arxiv.org/abs/2601.21122