Liu Peifan, Yan Jun, Li Wei, Wu Ying K
Appl Opt. 2021 Apr 20;60(12):3344-3352. doi: 10.1364/AO.420217.
Reliable and rapid assessment of the transverse mode quality of a free-space laser beam has a wide range of applications in laser development, research, and utilization. It has become even more important with recent advances in developing orbital angular momentum photon beams across a broad spectral region. In this work, a general modal analysis method for a free-space multimode laser beam has been developed based on Bayesian analysis. After transforming mode decomposition into a linear system problem, a Gaussian probabilistic model is used to find a closed-form solution. The method is found to be robust with the presence of Gaussian noise. Prior knowledge about the mode content can be incorporated into the method to improve the solution for situations when coherent disturbances or contamination are present in the laser beam. This method can be used to analyze the mode content for laser beams in different bases, such as Hermite-Gaussian (HG) modes and Laguerre-Gaussian (LG) modes. Three applications of this method are presented: a detailed modal analysis of the beam image from the incoherent intensity addition of HG modes and two examples of mode decomposition using the complex wavefront from the coherent superposition of HG and LG modes. The feasibility of this method is demonstrated using various simulation results. Based on digital images of a laser beam recorded without complex wavelength-limiting optics, in principle, this method can be used in a wide wavelength range from infrared to ultraviolet, and possibly x ray.
对自由空间激光束横向模式质量进行可靠且快速的评估在激光的开发、研究及应用中有着广泛的用途。随着近期在宽光谱区域内开发轨道角动量光子束方面取得的进展,这一点变得尤为重要。在这项工作中,基于贝叶斯分析开发了一种用于自由空间多模激光束的通用模式分析方法。在将模式分解转化为线性系统问题后,使用高斯概率模型来找到封闭形式的解。发现该方法在存在高斯噪声的情况下具有鲁棒性。关于模式内容的先验知识可以纳入该方法,以改善激光束中存在相干干扰或污染时的求解情况。该方法可用于分析不同基下激光束的模式内容,如厄米 - 高斯(HG)模式和拉盖尔 - 高斯(LG)模式。给出了该方法的三个应用:对HG模式非相干强度叠加产生的光束图像进行详细的模式分析,以及使用HG模式和LG模式相干叠加的复波前进行模式分解的两个示例。通过各种模拟结果证明了该方法的可行性。基于在没有复杂波长限制光学元件的情况下记录的激光束数字图像,原则上,该方法可用于从红外到紫外甚至可能到X射线的宽波长范围。