Javascript must be enabled to continue!
Evolution of Cos–Gaussian Beams in the Periodic Potential Optical Lattice
View through CrossRef
The evolution of Cos−Gaussian beams in periodic potential optical lattices is theoretically and numerically investigated. By theoretical analysis, a breathing soliton solution of the Gross–Pitaevskii equation with periodic potential is obtained, and the period of the breathing soliton is solved. In addition, the evolution of Cos−Gaussian beams in periodic potential optical lattices is numerically simulated. It is found that breathing solitons generate by appropriately choosing initial medium and beam parameters. Firstly, the effects of the initial parameters of Cos−Gaussian beams (initial phase and width) on its initial waveform and the propagation characteristics of breathing soliton are discussed in detail. Then, the influence of the initial parameters (modulation intensity and modulation frequency) of a photonic lattice on the propagation characteristics of breathing solitons is investigated. Finally, the effects of modulation intensity and modulation frequency on the width and period of the breathing soliton are analyzed. The results show that the number of breathing solitons is manipulated by controlling the initial parameters of Cos−Gaussian beams. The period and width of a breathing soliton are controlled by manipulating the initial parameters of a periodic photonic lattice. The results provide some theoretical basis for the generation and manipulation of breathing solitons.
Title: Evolution of Cos–Gaussian Beams in the Periodic Potential Optical Lattice
Description:
The evolution of Cos−Gaussian beams in periodic potential optical lattices is theoretically and numerically investigated.
By theoretical analysis, a breathing soliton solution of the Gross–Pitaevskii equation with periodic potential is obtained, and the period of the breathing soliton is solved.
In addition, the evolution of Cos−Gaussian beams in periodic potential optical lattices is numerically simulated.
It is found that breathing solitons generate by appropriately choosing initial medium and beam parameters.
Firstly, the effects of the initial parameters of Cos−Gaussian beams (initial phase and width) on its initial waveform and the propagation characteristics of breathing soliton are discussed in detail.
Then, the influence of the initial parameters (modulation intensity and modulation frequency) of a photonic lattice on the propagation characteristics of breathing solitons is investigated.
Finally, the effects of modulation intensity and modulation frequency on the width and period of the breathing soliton are analyzed.
The results show that the number of breathing solitons is manipulated by controlling the initial parameters of Cos−Gaussian beams.
The period and width of a breathing soliton are controlled by manipulating the initial parameters of a periodic photonic lattice.
The results provide some theoretical basis for the generation and manipulation of breathing solitons.
Related Results
Odd version Mathieu-Gaussian beam based on Green function
Odd version Mathieu-Gaussian beam based on Green function
Like the theoretical pattern of non-diffracting Bessel beams, ideal non-diffracting Mathieu beams also carry infinite energy, but cannot be generated as a physically realizable ent...
A comprehensive model for COS isotope discrimination during leaf COS uptake
A comprehensive model for COS isotope discrimination during leaf COS uptake
Anthropogenically emitted CO2 is warming the earth’s climate to temperatures that already exceed pre-industrial levels by more than 1.2 oC. Terrestrial vegetation has slo...
Isotope measurements of carbonyl sulfide
Isotope measurements of carbonyl sulfide
The Earth’s climate is currently changing due to excessive human greenhouse gas emissions. Carbon dioxide (CO2) is the most important greenhouse gas, so it is essential to accurate...
All-optical soliton control in photonic lattices
All-optical soliton control in photonic lattices
Los solitones ópticos son paquetes de luz (haces y/o pulsos) que no se dispersan gracias al balance entre difracción/dispersión y no linealidad. Al propagarse e interactuar los uno...
Construction of Bi-Pearcey beams and their mathematical mechanism
Construction of Bi-Pearcey beams and their mathematical mechanism
We present a theoretical expression in the form of the Pearcey function by deducing the Fresnel diffraction distribution of an elliptic line. Then, we numerically simulate and expe...
Current trends, barriers, and facilitators of use of core outcome sets in Cochrane systematic reviews: Protocol
Current trends, barriers, and facilitators of use of core outcome sets in Cochrane systematic reviews: Protocol
Background
: Core outcome sets (COS) represent agreed-upon minimum outcomes that should be reported in all studies in a given topic area. Cochrane reviews are c...
Shear Stresses of Hollow Lightweight Concrete Beams Made with Wood Waste
Shear Stresses of Hollow Lightweight Concrete Beams Made with Wood Waste
Hollow Lightweight Concrete (HLC) beams are gaining popularity due to low cost and low weight as compared with the Solid Lightweight Concrete (SLC) beams. HLC and SLC beams decreas...
Design and control of large-detuned optical lattice based on 87Rb atoms
Design and control of large-detuned optical lattice based on 87Rb atoms
An innovative and practical scheme of building far-detuned optical lattice for 87Rb atoms is proposed.The disposals of aligning the lattice beams,tuning the lattice frequency and c...

