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光学 rogue 波。

Optical rogue waves.

作者信息

Solli D R, Ropers C, Koonath P, Jalali B

机构信息

Department of Electrical Engineering, University of California, Los Angeles 90095, USA.

出版信息

Nature. 2007 Dec 13;450(7172):1054-7. doi: 10.1038/nature06402.

Abstract

Recent observations show that the probability of encountering an extremely large rogue wave in the open ocean is much larger than expected from ordinary wave-amplitude statistics. Although considerable effort has been directed towards understanding the physics behind these mysterious and potentially destructive events, the complete picture remains uncertain. Furthermore, rogue waves have not yet been observed in other physical systems. Here, we introduce the concept of optical rogue waves, a counterpart of the infamous rare water waves. Using a new real-time detection technique, we study a system that exposes extremely steep, large waves as rare outcomes from an almost identically prepared initial population of waves. Specifically, we report the observation of rogue waves in an optical system, based on a microstructured optical fibre, near the threshold of soliton-fission supercontinuum generation--a noise-sensitive nonlinear process in which extremely broadband radiation is generated from a narrowband input. We model the generation of these rogue waves using the generalized nonlinear Schrödinger equation and demonstrate that they arise infrequently from initially smooth pulses owing to power transfer seeded by a small noise perturbation.

摘要

最近的观测结果表明,在公海中遇到极大的 rogue 波的概率比根据普通波幅统计预期的要大得多。尽管人们已经付出了相当大的努力来理解这些神秘且可能具有破坏性的事件背后的物理原理,但全貌仍不明朗。此外,在其他物理系统中尚未观测到 rogue 波。在此,我们引入光学 rogue 波的概念,它是声名狼藉的罕见水波的对应物。利用一种新的实时检测技术,我们研究了一个系统,该系统将极其陡峭、巨大的波作为几乎相同初始波群的罕见结果呈现出来。具体而言,我们报告了在基于微结构光纤的光学系统中观测到 rogue 波的情况,该系统接近孤子裂变超连续谱产生的阈值——这是一个对噪声敏感的非线性过程,在该过程中,从窄带输入产生极宽带辐射。我们使用广义非线性薛定谔方程对这些 rogue 波的产生进行建模,并证明由于小噪声扰动引发的功率转移,它们很少从初始平滑脉冲中出现。

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