论文标题

通过相标记的光子计数,荧光检测到的傅立叶变换电子光谱

Fluorescence-detected Fourier transform electronic spectroscopy by phase-tagged photon counting

论文作者

Tamimi, Amr, Landes, Tiemo, Lavoie, Jonathan, Raymer, Michael G., Marcus, Andrew H.

论文摘要

荧光检测的傅立叶变换(FT)光谱是一种技术,其中控制光学干涉仪的相对路径以激发材料样品,并且随后的荧光被视为干涉仪延迟和相对相的函数。在这些实验中,提高信噪比比率的一种常见方法是将连续的相位扫描对相对光路径,并使用相位敏感的锁定放大器检测所得的调制荧光。在许多重要情况下,荧光信号太弱,无法使用锁定放大器测量,因此首选光子计数技术。在这里,我们引入了一种低信号荧光检测的FT光谱的方法,其中单个光子计数被分配到调制干涉仪相(“相位标记的光子计数”,或PTPC),并处理所得数据以构建光谱。我们研究了通过脉冲相干激光在一系列光子通量和可见性水平上共同激发的分子样品的荧光信号。我们将PTPC的性能与标准锁定检测方法进行比较,并确定可以在其中进行有意义的测量的信号参数范围。我们发现PTPC通常比锁定检测方法胜过,其主要测量不确定性来源与光子检测率的有限样品数量的统计数据相关。

Fluorescence-detected Fourier transform (FT) spectroscopy is a technique in which the relative paths of an optical interferometer are controlled to excite a material sample, and the ensuing fluorescence is detected as a function of the interferometer path delay and relative phase. A common approach to enhance the signal-to-noise ratio in these experiments is to apply a continuous phase sweep to the relative optical path, and to detect the resulting modulated fluorescence using a phase-sensitive lock-in amplifier. In many important situations, the fluorescence signal is too weak to be measured using a lock-in amplifier, so that photon counting techniques are preferred. Here we introduce an approach to low-signal fluorescence-detected FT spectroscopy, in which individual photon counts are assigned to a modulated interferometer phase ('phase-tagged photon counting,' or PTPC), and the resulting data are processed to construct optical spectra. We studied the fluorescence signals of a molecular sample excited resonantly by a pulsed coherent laser over a range of photon flux and visibility levels. We compare the performance of PTPC to standard lock-in detection methods and establish the range of signal parameters over which meaningful measurements can be carried out. We find that PTPC generally outperforms the lock-in detection method, with the dominant source of measurement uncertainty being associated with the statistics of the finite number of samples of the photon detection rate.

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