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MOEMS deformable mirror testing in cryo for future optical instrumentation

机译:MOEMS可变形反射镜在冷冻机中的测试,可用于未来的光学仪器

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摘要

MOEMS Deformable Mirrors (DM) are key components for next generation optical instruments implementing innovative adaptive optics systems, in existing telescopes as well as in the future ELTs. Due to the wide variety of applications, these DMs must perform at room temperature as well as in cryogenic and vacuum environment. Ideally, the MOEMS-DMs must be designed to operate in such environment. This is unfortunately usually not the case. We will present some major rules for designing / operating DMs in cryo and vacuum. Next step is to characterize with high accuracy the different DM candidates. We chose to use interferometry for the full characterization of these devices, including surface quality measurement in static and dynamical modes, at ambient and in vacuum/cryo. Thanks to our previous set-up developments, we are placing a compact cryo-vacuum chamber designed for reaching 10-6 mbar and 160K, in front of our custom Michelson interferometer, able to measure performances of the DM at actuator/segment level as well as whole mirror level, with a lateral resolution of 2um and a sub-nanometric z-resolution. Using this interferometric bench, we tested the PTT 111 DM from Iris AO: this unique and robust design uses an array of single crystalline silicon hexagonal mirrors with a pitch of 606μm, able to move in tip, tilt and piston with strokes from 5 to 7μm, and tilt angle in the range of +/- 5mrad. They exhibit typically an open-loop flat surface figure as good as < 20nm rms. A specific mount including electronic and opto-mechanical interfaces has been designed for fitting in the test chamber. Segment deformation, mirror shaping, open-loop operation are tested at room and cryo temperature and results are compared. The device could be operated successfully at 160K. An additional, mainly focus-like, 500 nm deformation is measured at 160K; we were able to recover the best flat in cryo by correcting the focus and local tip-tilts on some segments. Tests on DM with different mirror thicknesses (25μm and 50μm) and different coatings (silver and gold) are currently under way. Finally, the goal of these studies is to test DMs in cryo and vacuum conditions as well as to improve their architecture for staying efficient in harsh environment.
机译:MOEMS变形镜(DM)是在现有望远镜以及未来的ELT中实施创新型自适应光学系统的下一代光学仪器的关键组件。由于用途广泛,因此这些DM必须在室温以及低温和真空环境下工作。理想情况下,必须将MOEMS-DM设计为在这种环境下运行。不幸的是,通常情况并非如此。我们将介绍在低温和真空中设计/操作DM的一些主要规则。下一步是高精度地表征不同的DM候选者。我们选择将干涉仪用于这些设备的完整表征,包括在环境和真空/低温下以静态和动态模式进行表面质量测量。由于我们先前的设置开发,我们在定制的迈克尔逊干涉仪前放置了一个紧凑的低温真空室,该室设计用于达到10-6 mbar和160K,可同时测量执行器/段级DM的性能。整体镜面水平,横向分辨率为2um,亚纳米级z分辨率。我们使用此干涉仪工作台对Iris AO的PTT 111 DM进行了测试:这种独特而坚固的设计使用了间距为606μm的单晶硅六边形反射镜阵列,能够以5至7μm的行程在尖端,倾斜角和活塞中移动,并且倾斜角度在+/- 5mrad的范围内。它们通常显示出小于20nm rms的开环平面图。已设计出包括电子和光电机械接口的特定安装座,以安装在测试室中。在室温和低温下测试了扇形变形,镜面成形,开环操作,并对结果进行了比较。该设备可以160K成功运行。在160K时测得另外的,主要是焦点状的500 nm形变。通过校正某些部分的焦点和局部倾斜,我们能够获得最佳的冷冻平板。目前正在对具有不同镜面厚度(25μm和50μm)和不同涂层(银和金)的DM进行测试。最后,这些研究的目的是在低温和真空条件下测试DM,并改善其结构以在恶劣环境下保持高效。

著录项

  • 来源
    《MOEMS and miniaturized systems XVI》|2017年|101160M.1-101160M.11|共11页
  • 会议地点 San Francisco(US)
  • 作者单位

    Laboratoire d'Astrophysique de Marseille (LAM), CNRS, 38 rue Frederic Joliot Curie, 13388 Marseille Cedex 13, France;

    Laboratoire d'Astrophysique de Marseille (LAM), CNRS, 38 rue Frederic Joliot Curie, 13388 Marseille Cedex 13, France;

    Laboratoire d'Astrophysique de Marseille (LAM), CNRS, 38 rue Frederic Joliot Curie, 13388 Marseille Cedex 13, France;

    Laboratoire d'Astrophysique de Marseille (LAM), CNRS, 38 rue Frederic Joliot Curie, 13388 Marseille Cedex 13, France;

    Laboratoire d'Astrophysique de Marseille (LAM), CNRS, 38 rue Frederic Joliot Curie, 13388 Marseille Cedex 13, France;

    Iris AO, 2930 Shattuck Avenue, Berkeley, CA 94705, USA;

    Iris AO, 2930 Shattuck Avenue, Berkeley, CA 94705, USA;

    Iris AO, 2930 Shattuck Avenue, Berkeley, CA 94705, USA;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    micromirror array; MOEMS; cryogenic testing; adaptive optics; wavefront correction.;

    机译:微镜阵列MOEMS;低温测试;自适应光学波前校正。;

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