Intelligent Optics Laboratory, School of Engineering, University of Dayton, Dayton, Ohio 45469–2951, USA.
Opt Lett. 2011 Nov 15;36(22):4455-7. doi: 10.1364/OL.36.004455.
We demonstrate coherent combining (phase locking) of seven laser beams emerging from an adaptive fiber-collimator array over a 7 km atmospheric propagation path using a target-in-the-loop (TIL) setting. Adaptive control of the piston and the tip and tilt wavefront phase at each fiber-collimator subaperture resulted in automatic focusing of the combined beam onto an unresolved retroreflector target (corner cube) with precompensation of quasi-static and atmospheric turbulence-induced phase aberrations. Both phase locking (piston) and tip-tilt control were performed by maximizing the target-return optical power using iterative stochastic parallel gradient descent (SPGD) techniques. The performance of TIL coherent beam combining and atmospheric mitigation was significantly increased by using an SPGD control variation that accounts for the round-trip propagation delay (delayed SPGD).
我们展示了通过目标在环(TIL)设置,在 7 公里的大气传播路径上,从自适应光纤准直器阵列中出射的七束激光束的相干组合(相位锁定)。通过在每个光纤准直器子孔径处对活塞和尖端倾斜波前相位进行自适应控制,实现了对组合光束的自动聚焦,对无分辨率的后向反射器目标(角反射器)进行预补偿,对准静态和大气湍流引起的相位像差进行补偿。通过使用迭代随机并行梯度下降(SPGD)技术最大化目标返回光功率,实现了相位锁定(活塞)和倾斜控制。通过使用考虑往返传播延迟的 SPGD 控制变化(延迟 SPGD),TIL 相干光束组合和大气缓解的性能得到了显著提高。