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An 'exact' geometric-optics approach for computing the optical properties of large absorbing particles

机译:一种“精确”的几何光学方法,用于计算大吸收粒子的光学特性

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Based on the principles of geometric optics, the ray-tracing technique has been extensively used to compute the single-scattering properties of particles whose sizes are much larger than the wavelength of the incident wave. However, the inhomogeneity characteristics of internal waves within an absorbing particle, which stem from a complex index of refraction, have not been fully taken into consideration in the geometric ray-tracing approaches reported in the literature for computing the scattering properties of absorbing particles. In this paper, we first demonstrate that electromagnetic fields associated with an absorbing particle can be decomposed into the TE and TM modes. Subsequently, on the basis of Maxwell's equations and electromagnetic boundary conditions for the TE-mode electric field and the TM-mode magnetic field, we derive generalized Fresnel reflection and refraction coefficients, which differ from conventional formulae and do not involve complex angles. Additionally, a recurrence formulism is developed for the computation of the scattering phase matrix of an absorbing particle within the framework of the conventional geometric ray-tracing method. We further present pertinent numerical examples for the phase function and the degree of linear polarization in conjunction with light scattering by individual absorbing spheres, and discuss the deviation of the geometric optics solutions from the exact Lorenz-Mie results with respect to size parameter and complex refractive index.
机译:基于几何光学原理,射线追踪技术已被广泛用于计算尺寸远大于入射波波长的粒子的单散射特性。然而,在文献中报道的用于计算吸收粒子的散射特性的几何射线追踪方法中,并未充分考虑吸收粒子内的内部波的不均匀性特征,该特征是由复杂的折射率引起的。在本文中,我们首先证明与吸收粒子相关的电磁场可以分解为TE和TM模式。随后,基于麦克斯韦方程和TE模式电场和TM模式磁场的电磁边界条件,我们推导了广义的菲涅耳反射系数和折射系数,它们不同于常规公式,并且不涉及复杂的角度。另外,在常规几何射线追踪方法的框架内,开发了一种递归公式,用于计算吸收粒子的散射相矩阵。我们进一步给出相位函数和线性偏振度以及各个吸收球的光散射的相关数值示例,并讨论尺寸参数和复折射方面几何光学解与精确的Lorenz-Mie结果的偏差指数。

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