Fratta Gennaro, Daniele Piergiorgio, Labanca Ivan, Acconcia Giulia, Rech Ivan
Opt Lett. 2024 Sep 1;49(17):4958-4961. doi: 10.1364/OL.534363.
The time-correlated single-photon counting (TCSPC) technique is widely renowned for its capability of reconstructing rapid and weak light signals with exceptional sensitivity and sub-picosecond timing resolution. Unfortunately, the speed of TCSPC has been historically severely limited to avoid a phenomenon known as pileup distortion. For this reason, the count rate of a classic TCSPC acquisition channel is kept below a few percent of the laser excitation rate (usually 1%-5%). In this work, we experimentally validate a novel, to our knowledge, TCSPC theory recently reported that effectively overcomes such a limitation and finally achieves high-speed operation without distortion. Exploiting a single-photon avalanche diode (SPAD), in this paper we show how to acquire additional information about the status of the system at run time, and by combining it with the classic TCSPC data histogram, we report how a count rate of approximately 60% of the excitation frequency with near-zero distortion can indeed be achieved with a commercial system.
时间关联单光子计数(TCSPC)技术以其能够以卓越的灵敏度和亚皮秒级定时分辨率重建快速且微弱的光信号而闻名。不幸的是,历史上TCSPC的速度一直受到严重限制,以避免一种称为堆积失真的现象。因此,经典TCSPC采集通道的计数率保持在激光激发率的百分之几以下(通常为1%-5%)。在这项工作中,我们通过实验验证了一种据我们所知的新颖的TCSPC理论,该理论有效地克服了这一限制,并最终实现了无失真的高速运行。利用单光子雪崩二极管(SPAD),在本文中我们展示了如何在运行时获取有关系统状态的额外信息,并通过将其与经典TCSPC数据直方图相结合,我们报告了使用商业系统确实可以实现接近零失真的约60%激发频率的计数率。