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利用超快单光纤光镊捕获和双光子荧光激发微小物体。

Trapping and two-photon fluorescence excitation of microscopic objects using ultrafast single-fiber optical tweezers.

机构信息

University of Texas at Arlington, Department of Physics, Arlington, Texas 76019, USA.

出版信息

J Biomed Opt. 2011 Oct;16(10):105003. doi: 10.1117/1.3643340.

Abstract

Analysis of trapped microscopic objects using fluorescence and Raman spectroscopy is gaining considerable interest. We report on the development of single fiber ultrafast optical tweezers and its use in simultaneous two-photon fluorescence (TPF) excitation of trapped fluorescent microscopic objects. Using this method, trapping depth of a few centimeters was achieved inside a colloidal sample with TPF from the trapped particle being visible to the naked eye. Owing to the propagation distance of the Bessel-like beam emerging from the axicon-fiber tip, a relatively longer streak of fluorescence was observed along the microsphere length. The cone angle of the axicon was engineered so as to provide better trapping stability and high axial confinement of TPF. Trapping of the floating objects led to stable fluorescence emission intensity over a long period of time, suitable for spectroscopic measurements. Furthermore, the stability of the fiber optic trapping was confirmed by holding and maneuvering the fiber by hand so as to move the trapped fluorescent particle in three dimensions. Apart from miniaturization capability into lab-on-a-chip microfluidic devices, the proposed noninvasive microaxicon tipped optical fiber can be used in multifunctional mode for in-depth trapping, rotation, sorting, and ablation, as well as for two-photon fluorescence excitation of a motile sample.

摘要

使用荧光和拉曼光谱分析被困微观物体正引起相当大的兴趣。我们报告了单光纤超快光镊的发展及其在被捕获的荧光微物体的双光子荧光(TPF)激发中的同时应用。使用这种方法,在胶体样品内部实现了几厘米的捕获深度,被捕获粒子的 TPF 是肉眼可见的。由于从轴棱锥-光纤尖端出射的贝塞尔光束的传播距离,沿着微球长度观察到相对较长的荧光条纹。轴棱锥的圆锥角经过设计,以提供更好的捕获稳定性和 TPF 的高轴向限制。悬浮物体的捕获导致长时间内稳定的荧光发射强度,适合光谱测量。此外,通过用手握住和操纵光纤来确认光纤的稳定性,以便在三维空间中移动被捕获的荧光粒子。除了小型化到芯片上实验室微流控设备的能力外,所提出的非侵入式微轴棱锥尖端光纤还可以多功能模式用于深度捕获、旋转、分类和烧蚀,以及用于运动样品的双光子荧光激发。

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