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Tomographic active optical trapping of arbitrarily shaped objects by exploiting 3D refractive index maps

机译:利用3D折射率图对任意形状的物体进行断层成像主动光学捕获

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Optical trapping can manipulate the three-dimensional (3D) motion of spherical particles based on the simple prediction of optical forces and the responding motion of samples. However, controlling the 3D behaviour of non-spherical particles with arbitrary orientations is extremely challenging, due to experimental difficulties and extensive computations. Here, we achieve the real-time optical control of arbitrarily shaped particles by combining the wavefront shaping of a trapping beam and measurements of the 3D refractive index distribution of samples. Engineering the 3D light field distribution of a trapping beam based on the measured 3D refractive index map of samples generates a light mould, which can manipulate colloidal and biological samples with arbitrary orientations and/or shapes. The present method provides stable control of the orientation and assembly of arbitrarily shaped particles without knowing a priori information about the sample geometry. The proposed method can be directly applied in biophotonics and soft matter physics.
机译:光学陷波可以基于简单的光学力预测和样本响应运动来操纵球形粒子的三维(3D)运动。但是,由于实验困难和大量计算,控制具有任意方向的非球形粒子的3D行为极具挑战性。在这里,我们通过结合捕获束的波前形状和样品3D折射率分布的测量值来实现任意形状颗粒的实时光学控制。根据测得的样品3D折射率图对捕获光束的3D光场分布进行工程设计,可以生成光模,该光模可以操纵具有任意方向和/或形状的胶体样品和生物样品。本方法提供了对任意形状颗粒的取向和组装的稳定控制,而无需知道关于样品几何形状的先验信息。所提出的方法可以直接应用于生物光子学和软物质物理学。

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