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Exact analytical expansion of an off-axis Gaussian laser beam using the translation theorems for the vector spherical harmonics

机译:使用矢量球谐函数的平移定理,对离轴高斯激光束进行精确的解析扩展

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摘要

The interaction of a Gaussian laser beam with a particle that is located off axis is a fundamental problem encountered across many scientific fields, including biological physics, chemistry, and medicine. For spherical geometries, generalized Lorenz-Mie theory affords a solution of Maxwell's equations for the scattering from such a particle. The solution can be obtained by expanding the laser fields in terms of vector spherical harmonics (VSHs). However, the computation of the VSH expansion coefficients for off-axis beams has proven challenging. In the present study, we provide a very viable, theoretical framework to efficiently compute the sought-after expansion coefficients with high numerical accuracy. We use the existing theory for the expansion of an on-axis laser beam and employ Cruzan's translation theorems [Q. Appl. Math. 20, 33 (1962)] for the VSHs to obtain a description for more general off-axis beams. The expansion coefficients for the off-axis laser beam are presented in an analytical form in terms of an infinite series over the underlying translation coefficients. A direct comparison of the electromagnetic fields of such a beam expansion with the original laser fields and with results obtained using numerical quadratures shows excellent agreement (relative errors are on the order of approx.<10~(-3)). In practice, the analytical approach presented in this study has numerous applications, reaching from multiparticle scattering problems in atmospheric physics and climatology to optical trapping, sorting, and sizing techniques.
机译:高斯激光束与偏离轴心的粒子之间的相互作用是许多科学领域(包括生物物理学,化学和医学)所遇到的基本问题。对于球形几何体,广义的Lorenz-Mie理论提供了麦克斯韦方程组从该粒子散射的解。可以通过根据矢量球形谐波(VSHs)扩展激光场来获得解决方案。然而,已证明偏轴光束的VSH膨胀系数的计算具有挑战性。在当前的研究中,我们提供了一个非常可行的理论框架,可以高效地以较高的数值精度计算出所需的膨胀系数。我们使用现有的理论来扩展同轴激光束,并采用克鲁赞平移定理[Q.应用数学。 20,33(1962)]为VSH获得更一般的离轴光束的描述。偏轴激光束的膨胀系数以解析形式表示,取决于基础平移系数上的无穷级数。将这种光束扩展的电磁场与原始激光场直接进行比较,并与使用数字正交得到的结果进行比较,结果显示出极好的一致性(相对误差约为<10〜(-3)数量级)。在实践中,本研究中提出的分析方法具有广泛的应用,从大气物理学和气候学中的多粒子散射问题到光学捕获,分选和大小确定技术。

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