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Multi-level parallel clocking of CCDs for: improving charge transfer efficiency, clearing persistence, clocked anti-blooming and generating low noise backgrounds for pumping

机译:CCD的多级并行时钟,可用于:提高电荷转移效率,消除持久性,时钟抗起霜并产生低噪声背景以进行泵浦

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A multi-level clocking scheme has been developed to improve the parallel CTE of four-phase CCDs by suppressing the effects of traps located in the transport channel under barrier phases by inverting one of these phases throughout the transfer sequence. In parallel it was apparent that persistence following optical overload in Euclid VIS detectors would lead to undesirable signal released in subsequent rows and frames and that a suitable scheme for flushing this signal would be required. With care, the negatively biased electrodes during the multi-level transfer sequence can be made to pin the entire surface, row-by-row, and annihilate the problematic charges. This process can also be extended for use during integration to significantly reduce the unusable area of the detector, as per the clocked anti-blooming techniques developed many years ago; however, with the four-phase electrodes architecture of modern CCDs, we can take precautionary measures to avoid the problem of charge pumping and clock induced charge within the science frames. Clock induced charge is not all bad! We also propose the use of on-orbit trap-pumping for Euclid VIS to provide calibration input to ground based correction algorithms and as such a uniform, low noise background is require. Clock induced charge can be manipulated to provide a very suitable, low signal and noise background to the imaging array. Here we describe and present results of multi-level parallel clocking schemes for use in four-phase CCDs that could improve performance of high precision astronomy applications such as Euclid VIS.
机译:已经开发了一种多级时钟方案,以通过在整个传输序列中反转这些相之一来抑制势垒相下位于传输通道中的陷阱的影响,从而改善四相CCD的并行CTE。并行地,很明显,在欧几里德VIS检测器中的光过载之后的持续存在将导致在随后的行和帧中释放不希望的信号,并且将需要用于冲洗该信号的合适方案。小心地,可以使多级传输序列中的负偏压电极逐行固定整个表面,并消除有问题的电荷。按照多年前开发的定时防起霜技术,也可以扩展此过程以在集成期间使用,以显着减少检测器的不可用区域。但是,利用现代CCD的四相电极架构,我们可以采取预防措施来避免科学框架内的电荷泵和时钟感应电荷问题。时钟感应充电并非全都不好!我们还建议对Euclid VIS使用在轨陷阱泵,以向基于地面的校正算法提供校准输入,因此需要统一的低噪声背景。可以控制时钟感应的电荷,以为成像阵列提供非常合适的低信号和噪声背景。在这里,我们描述并介绍了用于四相CCD的多级并行时钟方案的结果,该方案可以提高高精度天文应用(例如Euclid VIS)的性能。

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