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Adaptive beam shaping by controlled thermal lensing in optical elements

机译:通过光学元件中受控热透镜的自适应光束整形

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We describe an adaptive optical system for use as a tunable focusing element. The system provides adaptive beam shaping via controlled thermal lensing in the optical elements. The system is agile, remotely controllable, touch free, and vacuum compatible; it offers a wide dynamic range, aberration-free focal length tuning, and can provide both positive and negative lensing effects. Focusing is obtained through dynamic heating of an optical element by an external pump beam. The system is especially suitable for use in interferometric gravitational wave interferometers employing high laser power, allowing for in situ control of the laser modal properties and compensation for thermal lensing of the primary laser. Using CO_(2) laser heating of fused-silica substrates, we demonstrate a focal length variable from infinity to 4.0 m, with a slope of 0.082 diopter/W of absorbed heat. For on-axis operation, no higher-order modes are introduced by the adaptive optical element. Theoretical modeling of the induced optical path change and predicted thermal lens agrees well with measurement.
机译:我们描述了用作可调聚焦元件的自适应光学系统。该系统通过光学元件中的受控热透镜提供自适应光束整形。该系统敏捷,可远程控制,无接触且与真空兼容;它提供了宽广的动态范围,无像差的焦距调节,并且可以提供正负透镜效果。通过外部泵浦光束对光学元件进行动态加热来获得聚焦。该系统特别适合用于采用高激光功率的干涉式重力波干涉仪,从而可以就地控制激光模态特性并补偿主激光器的热透镜。使用CO_(2)激光加热熔融石英衬底,我们证明了焦距从无穷大到4.0 m,吸收热量的斜率为0.082屈光度/ W。对于同轴操作,自适应光学元件不会引入高阶模式。诱导的光程变化和预测的热透镜的理论模型与测量结果非常吻合。

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