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Radiative relaxation time of quasinormal optical modes in small dielectric particles

机译:小介电粒子中准标准光学模的辐射弛豫时间

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Radiative relaxation times of optical states in small dielectric particles of arbitrary shape are calculated in the quasistatic limit up to the second order of perturbation theory, assuming that the polarization distribution for the optical states is known. The concept of antisymmetrical optical states, previously developed for a system of discrete dipoles, is generalized for the case of a bulk dielectric particle. We use the integral form of Maxwell's equations to obtain a general expansion of solutions for the polarization function inside a particle in terms of eigenfunctions of the integral interaction operator. Then we calculate imaginary parts of corresponding eigenvalues, which determine the radiative relaxation times of optical excitations, treating the non-Hermitian part of the interaction operator as a perturbation. The imaginary parts of eigenvalues are expanded in terms of total multipole moments of corresponding eigenmodes. Particles with special properties of symmetry can possess polarization modes with very large radiative relaxation time. We also discuss the possibility of application of the eigenfunction decomposition to numerical calculations of optical cross-sections for some particles of non-spherical shape.
机译:假设已知光学状态的偏振分布,则​​在准静态极限范围内直至任意二阶扰动理论都可以计算任意形状的小介电粒子中光学状态的辐射弛豫时间。先前为离散偶极子系统开发的反对称光学状态的概念在体电介质粒子的情况下得到了概括。我们使用麦克斯韦方程组的积分形式,根据积分相互作用算子的本征函数,获得了粒子内部极化函数解的一般扩展。然后,我们计算相应特征值的虚部,从而确定光激发的辐射弛豫时间,并将相互作用算子的非赫米特部分视为扰动。本征值的虚部根据相应本征模的总多极矩展开。具有特殊对称性的粒子可以具有很大的辐射弛豫时间的偏振模。我们还讨论了将本征函数分解应用于某些非球形粒子的光学横截面数值计算的可能性。

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