Opt Express. 2023 Feb 27;31(5):7825-7838. doi: 10.1364/OE.482404.
Due to the existence of the expanding beam portion in the positive branch confocal unstable resonator, the laser passes through the intracavity deformable mirror (DM) twice with different apertures, which makes it complicated to calculate the required compensation surface of the DM. In this paper, an adaptive compensation method for intracavity aberrations based on reconstruction matrix optimization is proposed to solve this problem. A collimated probe laser of 976 nm and a Shack-Hartmann wavefront sensor (SHWFS) are introduced from the outside of the resonator to detect intracavity aberrations. The feasibility and effectiveness of this method are verified by numerical simulations and the passive resonator testbed system. By adopting the optimized reconstruction matrix, the control voltages of the intracavity DM can be directly calculated from the SHWFS slopes. After compensation by the intracavity DM, the beam quality β of the annular beam coupled out from the scraper is improved from 6.2 times diffraction limit to 1.6 times diffraction limit.
由于正支共焦非稳腔中存在扩展光束部分,激光两次穿过具有不同孔径的腔内变形镜(DM),这使得计算 DM 的所需补偿表面变得复杂。在本文中,提出了一种基于重建矩阵优化的腔内像差自适应补偿方法来解决这个问题。从谐振腔外部引入了一个 976nm 的准直探测激光和一个 Shack-Hartmann 波前传感器(SHWFS)来检测腔内像差。通过数值模拟和无源谐振腔测试平台验证了该方法的可行性和有效性。通过采用优化的重建矩阵,可以直接从 SHWFS 斜率计算出腔内 DM 的控制电压。通过腔内 DM 进行补偿后,从刮刀耦合出的环形光束的光束质量β从 6.2 倍衍射极限提高到 1.6 倍衍射极限。