零抛光工艺,高表面质量和高效率*

A. Tesar, B. Fuchs
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引用次数: 1

摘要

Zerodur[1]是一种玻璃陶瓷复合材料,在温度不稳定性影响光学和机械性能的应用中具有重要的技术意义。例如,它已广泛用于地面和太空望远镜的反射镜衬底。激光陀螺反射镜需要高质量的抛光零度表面。最近在高功率激光应用中的光学研究表明,衬底的抛光表面质量影响高反射涂层的性能[2,3]。因此,对提高零度抛光表面质量的兴趣变得更加普遍。除了消除亚表面损伤外,在抛光[4]过程中,通过减少表面上再沉积的水合材料的数量,可以产生高质量的表面。在适当控制抛光参数的情况下,这些表面的粗糙度<1Å rms。我们的目标是研究零dur抛光,以推荐一种高表面质量的抛光工艺,可以很容易地适应标准的行星连续抛光机和主轴。该摘要包含了LLNL开发的抛光工艺的信息,该工艺可重复地以非常高的抛光效率提供高质量的抛光零度表面。为了更全面地了解抛光行为,计划继续开展工作。
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Zerodur Polishing Process for High Surface Quality and High Efficiency*
Zerodur [1] is a glass-ceramic composite of technical importance in applications where temperature instabilites influence optical and mechanical performance. For example, it has been extensively used for earthbound and spaceborne telescope mirror substrates. Polished Zerodur surfaces of high quality have been required for laser gyro mirrors. Recent studies of optics in high power laser applications have indicated that the polished surface quality of substrates affects performance of high reflection coatings [2,3]. Thus, the interest in improving Zerodur polished surface quality has become more general. Beyond eliminating subsurface damage, high quality surfaces are produced by reducing the amount of hydrated material redeposited on the surface during polishing [4]. With the proper control of polishing parameters, such surfaces exhibit roughnesses of <1Å rms. It has been our goal to study Zerodur polishing to recommend a high surface quality polishing process which could be easily adapted to standard planetary continuous polishing machines and spindles. This summary contains information on a polishing process developed at LLNL which reproducibly provides high quality polished Zerodur surfaces at very high polishing efficiencies. A continuation of work is planned to more fully understand the polishing behaviors.
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Defocus Measurement Using A Liquid Crystal Point Diffraction Interferometer Aberration Measurement Using Axial Intensity Polished Substrate Surface and Cleaning Study for Coated Optic Quality* Zerodur Polishing Process for High Surface Quality and High Efficiency* Surface Evaluation Techniques for the Optics of the Future
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