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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Two-Dimensional Fluorescence Lifetime Correlation Spectroscopy. 1. Principle
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Two-Dimensional Fluorescence Lifetime Correlation Spectroscopy. 1. Principle

机译:二维荧光寿命相关光谱。 1.原则

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Fluorescence correlation spectroscopy (FCS) is a unique tool for investigating microsecond molecular dynamics of complex molecules in equilibrium. However, application of FCS in the study, of molecular dynamics has been limited, owing to the complexity in the extraction of physically meaningful information. In this work, we develop a new method that combines FCS and time-correlated single photon counting (TCPSC) to extract unambiguous information about equilibrium dynamics of complex molecular systems. In this method, which we name two-dimensional fluorescence lifetime correlation spectroscopy (2D FLCS), we analyze the correlation of the fluorescence photon pairs, referring to the fluorescence lifetime. We first obtain the correlations of the photon pairs with respect to the excitation-emission delay times in the form of a two-dimensional (2D) map. Then, the 2D map is converted to the correlations between different species that have distinct fluorescence lifetimes using inverse Laplace transformation. This 2D FLCS is capable of visualizing the equilibration dynamics of complex molecules with microsecond time resolution at the single-molecule level. We performed a kinetic Monte Carlo simulation of a TCPSC-FCS experiment as a proof-of-principle example. The result clearly shows the validity of the proposed method and its high potential in analyzing the photon data of dynamic systems.
机译:荧光相关光谱法(FCS)是研究平衡中复杂分子的微秒分子动力学的独特工具。然而,由于提取具有物理意义的信息的复杂性,FCS在分子动力学研究中的应用受到了限制。在这项工作中,我们开发了一种将FCS和与时间相关的单光子计数(TCPSC)相结合的新方法,以提取有关复杂分子系统平衡动力学的明确信息。在我们称之为二维荧光寿命相关光谱法(2D FLCS)的这种方法中,我们参考荧光寿命来分析荧光光子对的相关性。我们首先以二维(2D)映射的形式获得光子对相对于激发-发射延迟时间的相关性。然后,使用逆Laplace变换将2D图转换为具有不同荧光寿命的不同物种之间的相关性。这种二维FLCS能够在单分子水平上以微秒的时间分辨率显示复杂分子的平衡动力学。我们以TCPSC-FCS实验的动力学蒙特卡罗模拟为例进行了证明。结果清楚地表明了该方法的有效性及其在分析动态系统光子数据方面的潜力。

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