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Speckle correction in polychromatic light with the self-coherent camera for the direct detection of exoplanets

机译:多色光的散斑矫正与自相干摄像头用于直接检测外出的外延

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Direct detection is a very promising field in exoplanet science. It allows the detection of companions with large separation and allows their spectral analysis. A few planets have already been detected and are under spectral analysis. But the full spectral characterization of smaller and colder planets requires higher contrast levels over large spectral bandwidths. Coronagraphs can be used to reach these contrasts, but their efficiency is limited by wavefront aberrations. These deformations induce speckles, star lights leaks, in the focal plane after the coronagraph. The wavefront aberrations should be estimated directly in the science image to avoid usual limitations by differential aberrations in classical adaptive optics. In this context, we introduce the Self-Coherent Camera (SCC). The SCC uses the coherence of the star light to produce a spatial modulation of the speckles in the focal plane and estimate the associated electric complex field. Controlling the wavefront with a deformable mirror, high contrasts have already been reached in monochromatic light with this technique. The performance of the current version of the SCC is limited when widening the spectral bandwidth. We will present a theoretical analysis of these issues and their possible solution. Finally, we will present test bench performance in polychromatic light.
机译:直接检测是Exoplanet Science中的一个非常有前途的领域。它允许检测具有大分离的伴侣,并允许其光谱分析。已经检测到几个行星并在光谱分析下进行。但是更小和较冷的行星的全光谱表征需要在大的光谱带宽上更高的对比度水平。血管结合可以用来达到这些对比,但它们的效率受到波前像差的限制。这些变形诱导斑点,星光灯泄漏,在焦平面之后的焦平面。应该直接在科学图像中估计波前像差,以避免经典自适应光学器件中的差分像差常用。在这种情况下,我们介绍了自相色相机(SCC)。 SCC使用星光的一致性来产生焦平面中斑点的空间调制并估计相关的电复合场。用可变形的镜子控制波前,通过这种技术以单色光达到高对比度。当扩大光谱带宽时,SCC的当前版本的性能受到限制。我们将对这些问题及其可能的解决方案提供理论分析。最后,我们将在多色光中提出测试台性能。

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