Lukin Igor P
Appl Opt. 2020 May 1;59(13):3833-3841. doi: 10.1364/AO.387549.
Coherent properties of vortex conical waves propagating through a turbulent atmosphere are theoretically studied with the use of the analytical solution of an equation that describes the evolution of the second-order transverse mutual coherence function of an optical radiation field. The following parameters of vortex conical waves are considered: the degree of coherence, the coherence radius, the integral scale of the degree of coherence, and the integral scale of the squared degree of coherence. The effect of atmospheric turbulence on these coherence characteristics of vortex conical waves is analyzed at different values of their parameters. It turns out that the degree of coherence of a vortex conical wave, formed from a Gaussian beam while passing through a conical lens (axicon) and a spiral phase plate, at its optical axis, is almost independent of the initial radius of the Gaussian beam and the radius of the axicon aperture. In addition, all the coherence characteristics of vortex conical waves depend on the topological charge stronger than on the wave-vector component normal to the radiation propagation direction. A meter of the integral scale of the degree of coherence of vortex Bessel-like optical beams is shown to be a preferred sensor of optical radiation distortions in a turbulent atmosphere as compared to a meter of the coherence radius of such beams. A lower degree of coherence of vortex conical waves than of fundamental (vortex-free) conical waves in a turbulent atmosphere is proven with the use of the integral scale of the degree of coherence of these optical waves as a referent criterion.
利用描述光辐射场二阶横向互相关函数演化的方程的解析解,从理论上研究了涡旋锥形波在湍流大气中传播时的相干特性。考虑了涡旋锥形波的以下参数:相干度、相干半径、相干度积分尺度和相干度平方积分尺度。分析了大气湍流在不同参数值下对涡旋锥形波这些相干特性的影响。结果表明,由高斯光束通过锥形透镜(轴锥镜)和螺旋相位板形成的涡旋锥形波在其光轴上的相干度几乎与高斯光束的初始半径和轴锥镜孔径半径无关。此外,涡旋锥形波的所有相干特性对拓扑电荷的依赖性强于对垂直于辐射传播方向的波矢分量的依赖性。与测量此类光束的相干半径相比,测量类涡旋贝塞尔光束的相干度积分尺度被证明是湍流大气中光辐射畸变的首选传感器。以这些光波的相干度积分尺度作为参考标准,证明了在湍流大气中涡旋锥形波的相干度低于基模(无涡旋)锥形波。