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High Rate Pulse Processing Algorithms for Microcalorimeters

机译:微型仪表的高速率脉冲处理算法

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It has been demonstrated that microcalorimeter spectrometers based on superconducting transition-edgesensors can readily achieve sub-100 eV energy resolution near 100 keV. However, the active volume of a single microcalorimeter has to be small in order to maintain good energy resolution, and pulse decay times are normally on the order of milliseconds due to slow thermal relaxation. Therefore, spectrometers are typically built with an array of microcalorimeters to increase detection efficiency and count rate. For large arrays, however, as much pulse processing as possible must be performed at the front end of readout electronics to avoid transferring large amounts of waveform data to a host computer for post-processing. In this paper, we present digital filtering algorithms for processing microcalorimeter pulses in real time at high count rates. The goal for these algorithms, which are being implemented in readout electronics that we are also currently developing, is to achieve sufficiently good energy resolution for most applications while being: a) simple enough to be implemented in the readout electronics; and, b) capable of processing overlapping pulses, and thus achieving much higher output count rates than those achieved by existing algorithms. Details of our algorithms are presented, and their performance is compared to that of the "optimal filter" that is currently the predominantly used pulse processing algorithm in the cryogenic-detector community.
机译:已经证明,基于超导转换折叠仪的微量高压仪光谱仪可以容易地实现近100keV的SUB-100 EV能量分辨率。然而,单个微量微量计的活性体积必须小,以便保持良好的能量分辨率,并且由于慢热松弛,脉冲衰减时间通常是毫秒的阶数。因此,光谱仪通常用微量微量仪阵列构建,以提高检测效率和计数率。然而,对于大阵列,必须在读出电子器件的前端执行尽可能多的脉冲处理,以避免将大量波形数据传送到主计算机以进行后处理。在本文中,我们在高计数率下实时处理微量微量仪脉冲的数字滤波算法。这些算法的目标是在我们目前正在开发的读出电子设备中实现的,是为了实现大多数应用的足够良好的能量分辨率,同时存在:a)在读出电子器件中以足够的方式实现;并且,B)能够处理重叠脉冲,从而实现比现有算法所实现的重量更高的输出计数。提供了我们算法的细节,并将其性能与当前是低温探测器社区中主要使用的脉冲处理算法的性能进行了比较。

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