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Photon Sieve Telescope

机译:光子筛望远镜

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摘要

In designing next-generation, ultra-large ( > 20m) apertures for space, many current concepts involve compactable, curved membrane reflectors. Here we present the idea of using a flat diffractive element that requires no out-of-plane deformation and so is much simpler to deploy. The primary is a photon sieve - a diffractive element consisting of a large number of precisely positioned holes distributed according to an underlying Fresnel Zone Plate (FZP) geometry. The advantage of the photon sieve over the FZP is that all the regions are connected, so the membrane substrate under simple tension can avoid buckling. Also, the hole distribution can be varied to generate any conic or apodization for specialized telescope requirements such as exo-solar planet detection. We have designed and tested numerous photon sieves as telescope primaries. Some of these have over 10 million holes in a 0.1 m diameter aperture and all of them give diffraction limited imaging. While photon sieves are diffractive elements and thus suffer from dispersion, we will present two successful solutions to this problem.
机译:在设计下一代超大(> 20米)的空间孔时,许多电流概念涉及可致密的弯曲膜反射器。在这里,我们介绍了使用不需要外平面变形的平面衍射元件的想法,因此省略要简单得多。主要是光子筛 - 由根据底层菲涅耳区(FZP)几何形状分布的大量精确定位的孔组成的衍射元件。光子筛过FZP的优点在于,所有区域都连接,因此在简单张力下的膜衬底可以避免屈曲。而且,可以改变孔分配以产生用于专用望远镜要求的任何圆锥形或截止化,例如外星太阳能行星检测。我们设计并测试了众多光子筛作为望远镜初版。其中一些在0.1米的孔径中有超过1000万孔,并且所有这些都具有衍射有限​​的成像。虽然光子筛是衍射元素,因此遭受分散,但我们将为这个问题提供两个成功的解决方案。

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