首页> 外文会议>SPIE Conference on Complex Light and Optical Forces >Optical manipulation, beam-shaping and scanner-free bright-?eld and dark-?eld imaging via multimode optical ?bre
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Optical manipulation, beam-shaping and scanner-free bright-?eld and dark-?eld imaging via multimode optical ?bre

机译:光学操纵,光束整形和无扫描亮 - ?ELD和暗黑的 - ΔELD成像通过多模光学呢?BRE

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We present a powerful approach towards full understanding of laser light propagation through multimode optical fibres and control of the light at the fibre output. Transmission of light within a multimode fibre introduces randomization of laser beam amplitude, phase and polarization. We discuss the importance of each of these factors and introduce an experimental geometry allowing full analysis of the light transmission through the multimode fibre and subsequent beam-shaping using a single spatial light modulator. We show that using this approach one can generate an arbitrary output optical field within the accessible field of view and range of spatial frequencies given by fibre core diameter and numerical aperture, respectively, that contains over 80% of the total available power. We present applications of these approaches in biophotonics and imaging. We show the confinement and manipulation of a number of microparticles using the output field of the multimode fibre. We demonstrate the modalities of bright-field and dark-field imaging and scanning fluorescence microscopy at acquisition rates allowing observation of dynamic processes such as Brownian motion of mesoscopic particles. Furthermore, we show how such control can realise a new form of mode converter and generate various types of advanced light fields such as propagation-invariant beams and optical vortices. These may be useful for future fibre based implementations of super-resolution or light sheet microscopy.
机译:我们展示了通过多模光光纤全能对激光传播的强大方法,并在光纤输出处的光控制。多模光纤内的光传输引入了激光束幅度,相位和极化的随机化。我们讨论了这些因素的重要性,并引入了一种实验几何形状,允许通过多模光纤通过多模光纤和随后的光束成形来完全分析光传输的实验几何。我们表明,使用这种方法,可以分别可以在可访问的视野和光纤芯直径和数值孔径给出的空间频率范围内生成任意输出光学场,其中包含超过总可用功率的80%以上的80%。我们在生物色素和成像中展示了这些方法的应用。我们展示了使用多模光纤的输出场的许多微粒的限制和操纵。我们证明了在采集速率下扫描荧光显微镜的亮场和暗场成像和扫描荧光显微镜的方式,允许观察介于介质粒子的褐色运动等动态过程。此外,我们示出了这种控制如何实现新的模式转换器,并生成各种类型的高级光场,例如传播不变光束和光学涡旋。这些对未来的超分辨率或灯光片显微镜的基于纤维的实施方式有用。

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