Feedback module for evaluating optical-power stabilization methods

SPIE LASE Pub Date : 2016-04-22 DOI:10.1117/12.2208800
J. Downing
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Abstract

A feedback module for evaluating the efficacy of optical-power stabilization without thermoelectric coolers (TECs) is described. The module comprises a pickoff optic for sampling a light beam, a photodiode for converting the sample power to electrical current, and a temperature sensor. The components are mounted on an optical bench that makes accurate (0.05°) beam alignment practical as well as providing high thermal-conductivity among the components. The module can be mounted on existing light sources or the components can be incorporated in new designs. Evaluations of optical and electronic stabilization methods are also reported. The optical method combines a novel, weakly reflective, weakly polarizing coating on the pickoff optic with a photodiode and an automatic-power-control (APC) circuit in a closed loop. The shift of emitter wavelength with temperature, coupled with the wavelength-dependent reflectance of the pickoff optic, enable the APC circuit to compensate for temperature errors. In the electronic method, a mixed-signal processor in a quasiclosed loop generates a control signal from temperature and photocurrent inputs and feeds it back to an APC circuit to compensate for temperature errors. These methods result in temperature coefficients less than 20 ppm/°C and relative rms power equal to 05% for the optical method and 0.02% for the electronic method. The later value represents an order of magnitude improvement over rms specifications for cooled, laser-diode modules and a five-fold improvement in wall-plug efficiency is achieved by eliminating TECs.
用于评估光功率稳定方法的反馈模块
介绍了一种用于评估无热电冷却器(tec)光功率稳定效果的反馈模块。该模块包括用于对光束进行采样的采集光学器件、用于将采样功率转换为电流的光电二极管和温度传感器。组件安装在光学台上,使精确(0.05°)光束对准实用,并在组件之间提供高导热性。该模块可以安装在现有的光源上,也可以将组件集成到新的设计中。对光学和电子稳定方法的评价也作了报道。该光学方法将一种新型的、弱反射的、弱偏振的涂层与一个光电二极管和一个闭环的自动功率控制(APC)电路结合在一起。发射波长随温度的变化,再加上接收光的波长相关反射率,使APC电路能够补偿温度误差。在电子方法中,准闭环中的混合信号处理器从温度和光电流输入产生控制信号,并将其反馈给APC电路以补偿温度误差。这些方法的结果是温度系数小于20ppm /°C,相对均方根功率等于05%的光学方法和0.02%的电子方法。后一个值代表了一个数量级的改进,比均方根规格的冷却,激光二极管模块和墙壁插头效率提高了五倍,通过消除tec实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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