Skip to main content

Research Repository

Advanced Search

Shock wave generation and propagation in dissipative and nonlocal nonlinear Rydberg media

Qin, Lu; Hang, Chao; Huang, Guoxiang; Li, Weibin

Shock wave generation and propagation in dissipative and nonlocal nonlinear Rydberg media Thumbnail


Authors

Lu Qin

Chao Hang

Guoxiang Huang

WEIBIN LI weibin.li@nottingham.ac.uk
Associate Professor



Abstract

We investigate the generation of optical shock waves in strongly interacting Rydberg atomic gases with a spatially homogeneous dissipative potential. The Rydberg atom interaction induces an optical nonlocal nonlinearity. We focus on local nonlinear (R b ≪ R0) and nonlocal nonlinear (R b ∼ R0) regimes, where R b and R0 are the characteristic length of the Rydberg nonlinearity and beam width, respectively. In the local regime, we show spatial width and contrast of the shock wave change monotonically when increasing strength of the dissipative potential and optical intensity. In the nonlocal regime, the characteristic quantity of the shock wave depend on R b /R0 and dissipative potential nontrivially and on the intensity monotonically. We find that formation of shock waves dominantly takes place when R b is smaller than R0, while the propagation dynamics is largely linear when R b is comparable to or larger than R0. Our results reveal nontrivial roles played by dissipation and nonlocality in the generation of shock waves, and provide a route to manipulate their profiles and stability. Our study furthermore opens new avenues to explore non-Hermitian physics, and nonlinear wave generation and propagation by controlling dissipation and nonlocality in the Rydberg media.

Citation

Qin, L., Hang, C., Huang, G., & Li, W. (2024). Shock wave generation and propagation in dissipative and nonlocal nonlinear Rydberg media. Physical Review A, 110, Article 013703. https://doi.org/10.1103/PhysRevA.110.013703

Journal Article Type Article
Acceptance Date Jun 20, 2024
Online Publication Date Jul 8, 2024
Publication Date Jul 8, 2024
Deposit Date Jun 20, 2024
Publicly Available Date Jun 20, 2024
Journal Physical Review A
Print ISSN 2469-9926
Electronic ISSN 2469-9934
Publisher American Physical Society
Peer Reviewed Peer Reviewed
Volume 110
Article Number 013703
DOI https://doi.org/10.1103/PhysRevA.110.013703
Public URL https://nottingham-repository.worktribe.com/output/36301242
Publisher URL https://journals.aps.org/pra/abstract/10.1103/PhysRevA.110.013703?ft=1

Files





You might also like



Downloadable Citations