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荧光的光猝灭:一种控制荧光团激发态寿命和取向的新方法。

Light quenching of fluorescence: a new method to control the excited state lifetime and orientation of fluorophores.

作者信息

Lakowicz J R, Gryczyński I, Kuśba J, Bogdanov V

机构信息

Department of Biological Chemistry, University of Maryland at Baltimore School of Medicine 21201.

出版信息

Photochem Photobiol. 1994 Dec;60(6):546-62. doi: 10.1111/j.1751-1097.1994.tb05147.x.

Abstract

Experimental studies have recently demonstrated that fluorescence emission can be quenched by laser light pulses from modern high-repetition rate lasers, a phenomenon we call "light quenching." In this overview article, we describe the possible effects of light quenching on the steady-state and time-resolved intensity and anisotropy of fluorophores. One can imagine two classes of experiments. Light quenching can occur within the single excitation pulse, or light quenching can be accomplished with a second time-delayed quenching pulse. The extent of light quenching depends on the amplitude of the emission spectrum at the quenching wavelength. Different effects are expected for light quenching by a single laser beam (within a single laser pulse) or for a time-delayed quenching pulse. Depending upon the polarization of the light quenching beam, light quenching can decrease or increase the anisotropy. Remarkably, the light quenching can break the usual z-axis symmetry of the excited state population, and the measured anisotropy (or polarization) depends upon whether the observation axis is parallel or perpendicular to the propagation direction of the light quenching beam. The polarization can increase to unity under selected conditions. Quenching with time-delayed light pulses can result in step changes in the intensity or anisotropy, which is predicted to result in oscillations in the frequency-domain intensity and anisotropy decays. These predicted effects of light quenching, including oscillations in the frequency-domain data, were demonstrated to occur using selected fluorophores. The increasing availability and use of pulsed laser sources requires consideration of the possible effects of light quenching and offers the opportunity for a new class of two-pulse or multiple-pulse time-resolved experiments where the sample is prepared by the excitation pulse and subsequent quenching pulses to modify the excited state population, followed by time- or frequency-domain measurement of the optically prepared excited fluorophores.

摘要

近期的实验研究表明,现代高重复频率激光器发出的激光脉冲能够淬灭荧光发射,我们将这种现象称为“光淬灭”。在这篇综述文章中,我们描述了光淬灭对荧光团稳态及时间分辨强度和各向异性可能产生的影响。可以设想两类实验。光淬灭可在单个激发脉冲内发生,或者光淬灭可通过第二个延迟淬灭脉冲来实现。光淬灭的程度取决于淬灭波长处发射光谱的幅度。对于单束激光(在单个激光脉冲内)的光淬灭或延迟淬灭脉冲,预期会有不同的效果。根据光淬灭光束的偏振情况,光淬灭可降低或增加各向异性。值得注意的是,光淬灭可打破激发态粒子的通常z轴对称性,并且所测量的各向异性(或偏振)取决于观测轴是平行还是垂直于光淬灭光束的传播方向。在选定条件下,偏振可增至单位值。用延迟光脉冲进行淬灭可导致强度或各向异性的阶跃变化,预计这会在频域强度和各向异性衰减中产生振荡。使用选定的荧光团证明了光淬灭的这些预期效果,包括频域数据中的振荡。脉冲激光源的可用性和使用日益增加,这就需要考虑光淬灭的可能影响,并为一类新型的双脉冲或多脉冲时间分辨实验提供了机会,在这类实验中,样品由激发脉冲制备,随后通过淬灭脉冲来改变激发态粒子,然后对光学制备的激发荧光团进行时域或频域测量。

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