Induced Coherence and Stable Soliton Spiraling
Alexander V. Buryak, Yuri S. Kivshar, Ming-feng Shih, Mordechai Segev
Abstract
We develop a theory of soliton spiraling in a bulk nonlinear medium and reveal a new physical mechanism: periodic power exchange via induced coherence, which can lead to stable spiraling and the formation of dynamical two-soliton states. Our theory not only explains earlier observations, but provides a number of predictions which are also verified experimentally. Finally, we show theoretically and experimentally that soliton spiraling can be controled by the degree of mutual initial coherence.
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