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Micro-deformable mirror for next generation adaptive optical systems

机译:用于下一代自适应光学系统的微变形镜

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Next generation giant telescopes as well as next generation instrumentation for 10m-class telescopes relies on the availability of highly performing adaptive optical systems. Different types of AO systems are currently under study, including Multi-Conjugate AO (MCAO), high dynamic range AO, and low-order AO for distributed partial correction AO. These systems require a large variety of deformable mirrors with very challenging parameters. The development of new technologies based on micro-opto-electro-mechanical systems (MOEMS) is promising for future deformable mirrors. The major advantages of the micro-deformable mirrors (MDM) are their compactness, scalability, and specific task customization using elementary building blocks. We are currently developing a MDM based on an array of electrostatic actuators with attachments to a continuous mirror on top. A high optical quality mirror is the most challenging building block for this device. The originality of our approach lies in the elaboration of a sacrificial layer and of a structural layer made of polymer materials. With this structure, very efficient planarization has been obtained: the long-distance flatness is below 0.2 μm, the print-through of localized 9μm steps is reduced to below 0.5μm and a rms roughness of 15 nm has been measured over the surface. The integration of this mirror surface on top of an actuator array is under investigation.
机译:下一代巨型望远镜以及用于10m级望远镜的下一代仪器都依赖于高性能自适应光学系统的可用性。当前正在研究不同类型的AO系统,包括多共轭AO(MCAO),高动态范围AO和用于分布式部分校正AO的低阶AO。这些系统需要各种具有非常具有挑战性的参数的可变形反射镜。基于微光机电系统(MOEMS)的新技术的开发对于未来的可变形反射镜很有前途。微变形镜(MDM)的主要优点是其紧凑性,可伸缩性以及使用基本构造块进行的特定任务自定义。我们目前正在开发一种基于静电致动器阵列的MDM,该致动器具有顶部连续镜的附件。高光学质量的镜子是该设备最具挑战性的组成部分。我们方法的独创性在于精心制作了牺牲层和由聚合物材料制成的结构层。采用这种结构,可以获得非常有效的平坦化:长距离平坦度低于0.2μm,局部9μm台阶的印刷通量减少至0.5μm以下,并且在整个表面上测得的均方根粗糙度为15 nm。该镜面在致动器阵列顶部上的集成正在研究中。

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