Malanga Francesco, Fratta Gennaro, Acconcia Giulia, Rech Ivan
IEEE Trans Biomed Circuits Syst. 2025 Apr;19(2):442-453. doi: 10.1109/TBCAS.2024.3445174. Epub 2025 Apr 2.
Time-Correlated Single Photon Counting (TCSPC) is a pivotal technique in low-light-detection applications, renowned for its exceptional sensitivity and bandwidth, widely used in Fluorescence Lifetime Imaging Microscopy (FLIM) and quantum optics. Despite its features, TCSPC is significantly hindered by the pile-up effect, which may distort measurements at high photon-detection rates. Overcoming pile-up is challenging, with traditional solutions often involving complex post-processing or multichannel systems, complicating the TCSPC setup and limiting performance. A breakthrough to overcome this issue is matching the photodetector dead time to an integer multiple of the laser period, obtaining a distortionless histogram even at high illumination conditions. Building on this concept, we present an Active Quenching Circuit (AQC) developed in high-voltage 150 nm technology, achieving unprecedented control over the Single Photon Avalanche Diode (SPAD) dead time. Our design compensates for Process, Voltage, and Temperature (PVT) variations, ensuring ultra precise and robust dead time tuning. The presented AQC achieves a dead-time resolution of 50 ps suitable for time-resolved experiments within a selectable range of laser frequencies from 20 to 100 MHz, maintaining close-to-ideal linearity in dead-time control. Experimental validations through fluorescence measurements reveal a distortion as low as 0.43% under elevated count-rate conditions, highlighting the efficacy of our circuit in overcoming the pile-up limitation.
时间相关单光子计数(TCSPC)是低光检测应用中的一项关键技术,以其卓越的灵敏度和带宽而闻名,广泛应用于荧光寿命成像显微镜(FLIM)和量子光学领域。尽管具有这些特性,但TCSPC受到堆积效应的严重阻碍,在高光子检测率下可能会使测量结果失真。克服堆积效应具有挑战性,传统解决方案通常涉及复杂的后处理或多通道系统,这使得TCSPC设置变得复杂并限制了性能。克服这一问题的一个突破是使光电探测器的死区时间与激光周期的整数倍相匹配,即使在高光照条件下也能获得无失真的直方图。基于这一概念,我们展示了一种采用150纳米高压技术开发的有源猝灭电路(AQC),实现了对单光子雪崩二极管(SPAD)死区时间前所未有的控制。我们的设计补偿了工艺、电压和温度(PVT)变化,确保了超精确且稳健的死区时间调谐。所展示的AQC实现了50皮秒的死区时间分辨率,适用于20至100兆赫兹可选激光频率范围内的时间分辨实验,在死区时间控制方面保持接近理想的线性度。通过荧光测量进行的实验验证表明,在高计数率条件下失真低至0.43%,突出了我们电路在克服堆积限制方面的功效。