Roger Thomas, Heitz Julius J F, Wright Ewan M, Faccio Daniele
School of Engineering and Physical Sciences, Heriot-Watt University, EH14 4AS Edinburgh, UK.
College of Optical Sciences, The University of Arizona, Tucson, Arizona 85721, USA.
Sci Rep. 2013 Dec 13;3:3491. doi: 10.1038/srep03491.
We study the nonlinear interaction between two non-collinear light beams that carry orbital angular momentum (OAM). More specifically, two incident beams interact at an angle in a medium with a second order nonlinearity and thus generate a third, non-collinear beam at the second harmonic frequency that experiences a reduced conversion efficiency in comparison to that expected based on conventional phase-matching theory. This reduction scales with the input beam OAM and, differently from previous spiral bandwidth calculations, is due to a geometric effect whereby the input OAM is projected along the non-collinear interaction direction. The effect is relevant even at small interaction angles and is further complicated at large angles by a non-conservation of the total OAM in the nonlinear interaction. Experiments are performed under different conditions and are in excellent agreement with the theory. Our results have implications beyond the specific case studied here of second-harmonic generation, in particular for parametric down-conversion of photons or in general for phase-matched non-collinear interactions between beams with different OAM.
我们研究了携带轨道角动量(OAM)的两束非共线光束之间的非线性相互作用。更具体地说,两束入射光束在具有二阶非线性的介质中以一定角度相互作用,从而产生一束处于二次谐波频率的非共线第三光束,与基于传统相位匹配理论预期的转换效率相比,该光束的转换效率有所降低。这种降低与输入光束的轨道角动量成正比,并且与先前的螺旋带宽计算不同,它是由一种几何效应引起的,即输入的轨道角动量沿非共线相互作用方向投影。即使在小相互作用角下,这种效应也很显著,而在大角度时,由于非线性相互作用中总轨道角动量不守恒,情况会更加复杂。我们在不同条件下进行了实验,实验结果与理论非常吻合。我们的结果不仅适用于此处研究的二次谐波产生这一特定情况,尤其对于光子的参量下转换,或者一般而言对于具有不同轨道角动量的光束之间的相位匹配非共线相互作用都有重要意义。