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间隙孤子的可控传播路径。

Controllable propagation paths of gap solitons.

作者信息

Wang Qing, Mihalache Dumitru, Belić Milivoj R, Zhang Lingling, Ke Lin, Zeng Liangwei

出版信息

Opt Lett. 2022 Mar 1;47(5):1041-1044. doi: 10.1364/OL.453604.

Abstract

This paper numerically investigates the evolution of solitons in an optical lattice with gradual longitudinal manipulation. We find that the stationary solutions (with added noise to the amplitude) keep their width, profile, and intensity very well, although the propagation path is continuously changing during the modulated propagation. Discontinuities in the modulation functions cause the scattering of the beam that may end the stable propagation. Our results reveal a method to control the trajectory of solitons by designed variation of the optical lattice waveguides. Interesting examples presented include the snakelike and spiraling solitons that both can be adaptively induced in sinusoidally and helically shaped optical lattices. The controlled propagation paths provide an excellent opportunity for various applications, including optical switches and signal transmission, among others.

摘要

本文对具有渐变纵向操控的光学晶格中孤子的演化进行了数值研究。我们发现,静态解(在振幅上添加噪声)能很好地保持其宽度、轮廓和强度,尽管在调制传播过程中传播路径不断变化。调制函数中的不连续性会导致光束散射,这可能会终止稳定传播。我们的结果揭示了一种通过设计光学晶格波导的变化来控制孤子轨迹的方法。给出的有趣例子包括蛇形和螺旋形孤子,它们都可以在正弦形和螺旋形光学晶格中自适应诱导产生。可控的传播路径为包括光开关和信号传输等在内的各种应用提供了绝佳机会。

相似文献

1
Controllable propagation paths of gap solitons.间隙孤子的可控传播路径。
Opt Lett. 2022 Mar 1;47(5):1041-1044. doi: 10.1364/OL.453604.
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Solitons in spiraling Vogel lattices.螺旋 Vogel 格子中的孤子。
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