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Optical Diffraction Interpretation: An alternative to interferometers

机译:光学衍射解释:干涉仪的替代品

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The Laser MegaJoule (LMJ) is a French high power laser project that requires thousands of large optical components. The wavefront performances of all those optics are critical to achieve the desired focal spot shape and to limit the hot spots that could damage the components. Fizeau interferometers and interferometric microscopes are the most commonly used tools to cover the whole range of interesting spatial frequencies. Anyway, in some particular cases like diffractive and/or coated and/or aspheric optics, an interferometric set-up becomes very expensive with the need to build a costly reference component or a specific to-the-wavelength designed interferometer. Despite the increasing spatial resolution of Fizeau interferometers, it may even not be enough, if you are trying to access the highest spatial frequencies of a transmitted wavefront for instance. The method we developed is based upon laser beam diffraction intermediate field measurements and their interpretation with a Fourier analysis and the Talbot effect theory. We demonstrated in previous papers that it is a credible alternative to classical methods. In this paper we go further by analyzing main error sources and discussing main practical difficulties.
机译:Laser MegaJoule(LMJ)是法国的高功率激光项目,需要数千个大型光学组件。所有这些光学器件的波前性能对于获得所需的焦点形状和限制可能损坏组件的热点至关重要。 Fizeau干涉仪和干涉显微镜是最常用的工具,可以涵盖整个感兴趣的空间频率范围。无论如何,在某些特定情况下,例如衍射和/或镀膜和/或非球面光学器件,由于需要建立昂贵的参考组件或特定波长设计的干涉仪,因此干涉仪的设置变得非常昂贵。尽管Fizeau干涉仪的空间分辨率提高了,但是,如果您尝试访问透射波阵面的最高空间频率,甚至可能还不够。我们开发的方法基于激光束衍射中间场测量,并通过傅里叶分析和Talbot效应理论对其进行解释。我们在先前的论文中证明了它是经典方法的可靠替代品。在本文中,我们将通过分析主要错误源并讨论主要的实际困难来做进一步的研究。

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