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Increasing the collection efficiency of time-correlated single-photon counting with single-photon avalanche diodes using immersion lenses

机译:使用浸没透镜提高与时间相关的单光子计数与单光子雪崩二极管的收集效率

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摘要

Single-photon avalanche diodes (SPADs) achieving high timing resolution (approximate to 20-50 ps) developed for timecorrelated single-photon counting (TCSPC) generally have very small photosensitive areas (25-100 mu m in diameter). This limits the achievable photon counting rate and signal-to-noise ratio and may lead to long counting times. This is detrimental in applications requiring several measurements, such as fluorescence lifetime imaging (FLIM) microscopy, which requires scanning, and time-domain diffuse optical tomography (TD-DOT). We show in this work that the use of an immersion lens directly affixed onto the photosensitive area of the SPAD helps alleviate this problem by allowing more light to be concentrated onto the detector. Following careful optical design and simulations, our experimental results show that it is actually possible to achieve the predicted theoretical increase in the photon counting rate (we achieve a factor of approximate to 4 here). This work is of high relevance in high timing resolution TCSPC with small photosensitive area detectors and should find widespread interest in FLIM and TD-DOT with SPADs. (C) 2016 Optical Society of America
机译:为实现时间相关的单光子计数(TCSPC)而开发的具有高时序分辨率(约20-50 ps)的单光子雪崩二极管(SPAD)通常具有非常小的光敏区域(直径为25-100μm)。这限制了可达到的光子计数率和信噪比,并可能导致较长的计数时间。这在需要进行多次测量的应用中是有害的,例如需要扫描的荧光寿命成像(FLIM)显微镜和时域漫射光学层析成像(TD-DOT)。我们在这项工作中表明,将浸入式透镜直接固定在SPAD的感光区域上,可以使更多的光集中到检测器上,从而减轻了这一问题。经过仔细的光学设计和模拟,我们的实验结果表明,实际上有可能实现光子计数率的理论上的预期增长(此处我们达到约4的系数)。这项工作与带有小光敏面积检测器的高定时分辨率TCSPC具有高度相关性,应该对带有SPAD的FLIM和TD-DOT产生广泛的兴趣。 (C)2016美国眼镜学会

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