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Comparison of stresses on homogeneous spheroids in the optical stretcher computed with geometrical optics and generalized Lorenz-Mie theory

机译:用几何光学和广义Lorenz-Mie理论计算的光学拉伸器中均质球体上的应力比较

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摘要

We present two electromagnetic frameworks to compare the surface stresses on spheroidal particles in the optical stretcher (a dual-beam laser trap that can be used to capture and deform biological cells). The first model is based on geometrical optics (GO) and limited in its applicability to particles that are much greater than the incident wavelength. The second framework is more sophisticated and hinges on the generalized Lorenz-Mie theory (GLMT). Despite the difference in complexity between both theories, the stress profiles computed with GO and GLMT are in good agreement with each other (relative errors are on the order of 1-10%). Both models predict a diminishing of the stresses for larger wavelengths and a strong increase of the stresses for shorter laser-cell distances. Results indicate that surface stresses on a spheroid with an aspect ratio of 1.2 hardly differ from the stresses on a sphere of similar size. Knowledge of the surface stresses and whether or not they redistribute during the stretching process is of crucial importance in real-time applications of the stretcher that aim to discern the viscoelastic properties of cells for purposes of cell characterization, sorting, and medical diagnostics.
机译:我们提出了两个电磁框架来比较光学担架(可用于捕获和变形生物细胞的双光束激光阱)中的球形颗粒的表面应力。第一个模型基于几何光学(GO),并且其适用性限于远大于入射波长的粒子。第二个框架更为复杂,并取决于广义的Lorenz-Mie理论(GLMT)。尽管两种理论之间的复杂度不同,但使用GO和GLMT计算的应力分布彼此非常吻合(相对误差约为1-10%)。两种模型都预测较大波长的应力将减小,而较短的激光元件距离则应力将显着增加。结果表明,长宽比为1.2的椭球体上的表面应力与尺寸相似的球体上的应力几乎没有区别。表面张力的知识以及它们是否在拉伸过程中重新分布的知识在拉伸机的实时应用中至关重要,拉伸机的目的是识别细胞的粘弹性,以进行细胞表征,分类和医学诊断。

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