Quantum Reflections of Nonlocal Optical Solitons in a Cold Rydberg Atomic Gas
arXiv:2005.10003 · doi:10.1103/PhysRevA.101.053845
Abstract
Quantum reflection refers to a non-vanishing reflection probability in the absence of a classically turning point. Much attention has been paid to such reflections due to their fundamental, intriguing physics and potential practical applications. Here we propose a scheme to realize a quantum reflection of nonlocal nonlinear optical beams in a cold Rydberg atomic gas via electromagnetically induced transparency working in a dispersion regime. Based on the long-range interaction between Rydberg atoms, we found that the system supports low-power nonlocal optical solitons. Such nonlocal solitons can display a sharp transition between reflection, trapping, and transmission when scattered by a linear attractive potential, created by gate photons stored in another Rydberg state. Different from conventional physical systems explored up to now, the quantum reflection of the nonlocal optical solitons in the Rydberg atomic gas exhibits interesting anomalous behaviors, which can be actively manipulated by tuning the incident velocity and intensity of the probe field, as well as the nonlocality of the Kerr nonlinearity inherent in the Rydberg atomic gas. The results reported here are not only useful for developing Rydberg nonlinear optics but also helpful for characterizing the physical property of the Rydberg gas and for designing novel nonlinear optical devices.
References in corpus (10)
- Cooperative atom-light interaction in a blockaded Rydberg ensemble
- Single Photon Transistor Mediated by Inter-State Rydberg Interaction
- Single-Photon Transistor Using a Förster Resonance
- Low velocity quantum reflection of Bose-Einstein condensates
- Enhanced Quantum Reflection of Matter-Wave Solitons
- Optimal light storage with full pulse shape control
- Spectroscopy of strontium Rydberg states using electromagnetically induced transparency
- Efimov States of Strongly Interacting Photons
- Many-body decoherence dynamics and optimised operation of a single-photon switch
- Quantum reflection and interference of matter waves from periodically doped surfaces