一种电流辅助CMOS光子采样器,具有用于荧光寿命传感的两个抽头

H. Ingelberts, M. Kuijk
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引用次数: 5

摘要

基于荧光寿命的成像技术在医学和生物学领域的应用越来越重要。最先进的荧光寿命显微镜要么使用笨重和昂贵的门控图像增强器耦合到CCD或单光子探测器在一个缓慢的扫描设置。许多尝试正在创造紧凑,成本效益的全CMOS成像荧光寿命传感。单光子雪崩二极管(SPAD)成像仪具有很好的时序分辨率和噪声特性,但检测效率较低。另一种方法是使用基于解调检测器的CMOS成像仪。这些成像仪要么非常快,要么非常高效,但将两者结合起来仍然是一个挑战。最近,我们开发了电流辅助光子采样器(CAPS)来解决这些问题,在这项工作中,我们提出了一种具有两个检测抽头的新型CAPS,可以在两个时间窗内对荧光衰减进行采样。在单指数衰减的情况下,两个窗口提供了足够的信息来求解生命周期。我们建立了一个电光装置来表征探测器,并将其用于荧光寿命测量。它由一个超连续脉冲激光源、一个将光聚焦到探测器上的光学系统和皮秒计时电子设备组成。我们描述了双抽头CAPS的结构和操作,并提供了在可见光和近红外光谱中多波长速度性能的基本表征。我们还记录了不同的可见光和近红外荧光染料的荧光衰减,并提供了不同的方法来确定荧光寿命。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A current-assisted CMOS photonic sampler with two taps for fluorescence lifetime sensing
Imaging based on fluorescence lifetime is becoming increasingly important in medical and biological applications. State-of- the-art fluorescence lifetime microscopes either use bulky and expensive gated image intensifiers coupled to a CCD or single-photon detectors in a slow scanning setup. Numerous attempts are being made to create compact, cost-effective all- CMOS imagers for fluorescence lifetime sensing. Single-photon avalanche diode (SPAD) imagers can have very good timing resolution and noise characteristics but have low detection efficiency. Another approach is to use CMOS imagers based on demodulation detectors. These imagers can be either very fast or very efficient but it remains a challenge to combine both characteristics. Recently we developed the current-assisted photonic sampler (CAPS) to tackle these problems and in this work, we present a new CAPS with two detection taps that can sample a fluorescence decay in two time windows. In the case of mono-exponential decays, two windows provide enough information to resolve the lifetime. We built an electro-optical setup to characterize the detector and use it for fluorescence lifetime measurements. It consists of a supercontinuum pulsed laser source, an optical system to focus light into the detector and picosecond timing electronics. We describe the structure and operation of the two-tap CAPS and provide basic characterization of the speed performance at multiple wavelengths in the visible and near-infrared spectrum. We also record fluorescence decays of different visible and NIR fluorescent dyes and provide different methods to resolve the fluorescence lifetime.
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