Ma Rui, Zhang Hua Hui, Manuylovich Egor, Sugavanam Srikanth, Wu Han, Zhang Wei Li, Dvoyrin Vladislav, Hu Tao Ping, Hu Zhi Jia, Rao Yun Jiang, Turitsyn Sergei K
Opt Express. 2020 Jul 6;28(14):20587-20597. doi: 10.1364/OE.394350.
Control of the properties of speckle patterns produced by mutual interference of light waves is important for various applications of multimode optical fibers. It has been shown previously that a high signal-to-noise ratio in a multimode fiber can be achieved by preferential excitation of lower order spatial eigenmodes in optical fiber communication. Here we demonstrate that signal spatial coherence can be tailored by changing relative contributions of the lower and higher order multimode fiber eigenmodes for the research of speckle formation and spatial coherence. It is found that higher order spatial eigenmodes are more conducive to the final speckle formation. The minimum speckle contrast occurs in the lower order spatial eigenmodes dominated regime. This work paves the way for control and manipulation of the spatial coherence of light in a multimode fiber varying from partially coherent or totally incoherent light.
控制由光波相互干涉产生的散斑图案特性对于多模光纤的各种应用至关重要。先前已经表明,在光纤通信中通过优先激发低阶空间本征模可以在多模光纤中实现高信噪比。在此我们证明,通过改变低阶和高阶多模光纤本征模的相对贡献,可以调整信号空间相干性,用于散斑形成和空间相干性的研究。发现高阶空间本征模更有利于最终的散斑形成。最小散斑对比度出现在低阶空间本征模主导的区域。这项工作为控制和操纵多模光纤中从部分相干光到完全非相干光的光的空间相干性铺平了道路。