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用于光学细胞操作建模的动态光线追踪

Dynamic ray tracing for modeling optical cell manipulation.

作者信息

Sraj Ihab, Szatmary Alex C, Marr David W M, Eggleton Charles D

机构信息

Department of Mechanical Engineering, University of Maryland Baltimore County, Baltimore, Maryland 21250, USA.

出版信息

Opt Express. 2010 Aug 2;18(16):16702-14. doi: 10.1364/OE.18.016702.

Abstract

Current methods for predicting stress distribution on a cell surface due to optical trapping forces are based on a traditional ray optics scheme for fixed geometries. Cells are typically modeled as solid spheres as this facilitates optical force calculation. Under such applied forces however, real and non-rigid cells can deform, so assumptions inherent in traditional ray optics methods begin to break down. In this work, we implement a dynamic ray tracing technique to calculate the stress distribution on a deformable cell induced by optical trapping. Here, cells are modeled as three-dimensional elastic capsules with a discretized surface with associated hydrodynamic forces calculated using the Immersed Boundary Method. We use this approach to simulate the transient deformation of spherical, ellipsoidal and biconcave capsules due to external optical forces induced by a single diode bar optical trap for a range of optical powers.

摘要

当前用于预测由于光镊力导致的细胞表面应力分布的方法是基于传统的针对固定几何形状的光线光学方案。细胞通常被建模为实心球体,因为这便于光力计算。然而,在这种施加的力作用下,真实且非刚性的细胞会发生变形,因此传统光线光学方法中固有的假设开始失效。在这项工作中,我们实施了一种动态光线追踪技术来计算由光镊诱导的可变形细胞上的应力分布。在这里,细胞被建模为具有离散表面的三维弹性胶囊,并使用浸入边界法计算相关的流体动力。我们使用这种方法来模拟球形、椭圆形和双凹形胶囊在一系列光功率下由于单个二极管条形光镊产生的外部光力而引起的瞬态变形。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ca0b/3408928/1e85f4fd1f7a/oe-18-16-16702-g001.jpg

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