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非线性显微镜中的时空同步聚焦

Simultaneous Spatial and Temporal Focusing in Nonlinear Microscopy.

作者信息

Durst M E, Zhu G, Xu C

机构信息

School of Applied and Engineering Physics, Cornell University, Ithaca, NY 14853.

出版信息

Opt Commun. 2008 Apr 1;281(7):1796-1805. doi: 10.1016/j.optcom.2007.05.071.

Abstract

Simultaneous spatial and temporal focusing (SSTF), when combined with nonlinear microscopy, can improve the axial excitation confinement of wide-field and line-scanning imaging. Because two-photon excited fluorescence depends inversely on the pulse width of the excitation beam, SSTF decreases the background excitation of the sample outside of the focal volume by broadening the pulse width everywhere but at the geometric focus of the objective lens. This review theoretically describes the beam propagation within the sample using Fresnel diffraction in the frequency domain, deriving an analytical expression for the pulse evolution. SSTF can scan the temporal focal plane axially by adjusting the GVD in the excitation beam path. We theoretically define the axial confinement for line-scanning SSTF imaging using a time-domain understanding and conclude that line-scanning SSTF is similar to the temporally-decorrelated multifocal multiphoton imaging technique. Recent experiments on the temporal focusing effect and its axial confinement, as well as the axial scanning of the temporal focus by tuning the GVD, are presented. We further discuss this technique for axial-scanning multiphoton fluorescence fiber probes without any moving parts at the distal end. The temporal focusing effect in SSTF essentially replaces the focusing of one spatial dimension in conventional wide-field and line-scanning imaging. Although the best axial confinement achieved by SSTF cannot surpass that of a regular point-scanning system, this trade-off between spatial and temporal focusing can provide significant advantages in applications such as high-speed imaging and remote axial scanning in an endoscopic fiber probe.

摘要

同时空聚焦(SSTF)与非线性显微镜相结合时,可改善宽场和线扫描成像的轴向激发限制。由于双光子激发荧光与激发光束的脉冲宽度成反比,SSTF通过在除物镜几何焦点外的所有地方展宽脉冲宽度,降低了焦体积外样品的背景激发。本综述在频域中使用菲涅耳衍射从理论上描述了光束在样品中的传播,推导了脉冲演化的解析表达式。SSTF可通过调整激发光束路径中的群速度色散(GVD)轴向扫描时间焦平面。我们从时域理解的角度理论上定义了线扫描SSTF成像的轴向限制,并得出线扫描SSTF类似于时间去相关多焦点多光子成像技术的结论。介绍了关于时间聚焦效应及其轴向限制以及通过调整GVD进行时间焦点轴向扫描的最新实验。我们进一步讨论了这种用于轴向扫描多光子荧光光纤探头的技术,其远端没有任何移动部件。SSTF中的时间聚焦效应本质上取代了传统宽场和线扫描成像中一个空间维度的聚焦。尽管SSTF实现的最佳轴向限制无法超过常规点扫描系统,但时空聚焦之间的这种权衡在诸如高速成像和内窥镜光纤探头中的远程轴向扫描等应用中可提供显著优势。

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本文引用的文献

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Micromachined scanning confocal optical microscope.微机械扫描共焦光学显微镜
Opt Lett. 1996 May 15;21(10):764-6. doi: 10.1364/ol.21.000764.
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