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Fast time-correlated single photon counting system to overcome pile-up limitation with single photon avalanche diodes

机译:快速时间相关的单光子计数系统,以克服单光子雪崩二极管的堆积限制

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Time-Correlated Single Photon Counting (TCSPC) is generally recognized as a powerful tool for Fluorescence Lifetime Imaging (FLIM), thanks to its inherently high sensitivity and timing precision. Nevertheless, one of the major drawbacks of the technique is represented by the so-called pile-up distortion, that typically limits the acquisition rate to few percent of the laser stimulation rate. In recent years, an innovative methodology has been proposed to overcome this restriction: by matching the detector dead time to the laser period an average acquisition rate of 40 Mcps is achieved, along with negligible distortion. In this work, we present the first single-channel system that implements the new measurement technique. To this aim, two modules have been specifically developed to accommodate a custom-technology Single-Photon Avalanche Diode (SPAD) and its dedicated acquisition chain. On one hand, a compact Detection Module hosts both a fully-integrated Active Quenching Circuit (AQC) to provide a finely-tunable dead time and a differential Pick-Up Circuit (PUC) to extract a picosecond-precision timing signal. On the other hand, a Time Conversion module is intended to acquire the fast timing signal thanks to a mixed-architecture Fast Time to Amplitude Converter (F-TAC). The experimental characterization proved that the modules feature excellent performance both in terms of timing precision (55 ps FWHM) and Differential Nonlinearity (4 % LSB peak to peak) and we're now ready to compare the new technique with the classic pile-up limited approach in a real application on field.
机译:随着其固有的高灵敏度和定时精度,通常将时间相关的单光子计数(TCSPC)识别为荧光寿命成像(FLIM)的强大工具。然而,该技术的一个主要缺点之一由所谓的堆积失真表示,其通常将采集率限制为激光刺激率的百分比。近年来,已经提出了一种创新方法来克服这种限制:通过将检测器死区时间与激光周期匹配,实现了40个MCP的平均采集率,并且失真可忽略不计。在这项工作中,我们介绍了实现新测量技术的第一个单通道系统。为此目的,已经专门开发了两个模块以容纳定制技术单光子雪崩二极管(SPAD)及其专用采集链。一方面,一个紧凑的检测模块托管全集成的主动淬火电路(AQC),以提供精细可调的死区时间和差分拾取电路(PUC)以提取皮秒精度定时信号。另一方面,时间转换模块旨在通过混合架构快速时间到振幅转换器(F-TAC)来获取快速定时信号。实验表征证明,模块在定时精度(55 ps fwhm)和差分非线性(4%LSB峰到峰值)方面都具有出色的性能,我们现在可以使用经典堆积有限的新技术进行比较现场实际应用中的方法。

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