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The Ultimate CCD for Laser guide star wavefront sensing on Extremely Large Telescopes

机译:激光导航星的最终CCD在极大的望远镜上感应

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All of the extremely large telescopes (ELTs) will utilize sodium laser guide star (LGS) adaptive optics (AO) systems. Most of these telescopes plan to use the Shack - Hartmann approach for wavefront sensing. In these AO systems, the laser spots in subapertures at the edge of the pupil will suffer from spot elongation due to the 10 km extent of the sodium layer and the large separation from the projection laser. This spot elongation will severely degrade the performance of standard geometry wavefront sensing systems. In this paper, we present a CCD with custom pixel morphology that aligns the pixels of each subaperture with the radial extension of the LGS spot. This CCD design will give better performance than a standard geometry CCDs for continuous wave lasers. In addition, this CCD design is optimal for a pulsed sodium laser. The pixel geometry enables each subaperture to follow a laser pulse traversing the sodium layer, providing optimal sampling of a limited number of detected photons. In addition to novel pixel layout, this CCD will also incorporate experimental JFET sense amplifiers and use CMOS design approaches to simplify the routing of biases, clocks and video output. This CCD will attain photon-noise limited performance at high frame rates, and is being incorporated in the plans for the Thirty Meter Telescope (TMT).
机译:所有极大的望远镜(elts)都将利用钠激光导向星(LGS)自适应光学(AO)系统。这些望远镜的大多数计划使用Shack-Hartmann方法进行波前感。在这些AO系统中,由于钠层的10km范围和从投影激光器的大分离,瞳孔边缘处的亚峰的激光斑点将遭受点伸长率。这种现场伸长率将严重降低标准几何波前感测系统的性能。在本文中,我们介绍了一种具有自定义像素形态的CCD,使每个子孔节的像素与LGS点的径向扩展调整。此CCD设计将提供比连续波激光器的标准几何CCD更好的性能。此外,该CCD设计对于脉冲钠激光器是最佳的。像素几何体使每个子孔节能够遵循穿过钠层的激光脉冲,从而提供有限数量的检测到的光子的最佳采样。除了新颖的像素布局之外,该CCD还将采用实验JFET检测放大器,并使用CMOS设计方法来简化偏置,时钟和视频输出的路由。该CCD将以高帧速率达到光子噪声有限的性能,并正在加入三十米望远镜(TMT)的计划中。

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