Frobenius-Perron eigenstates in deformed microdisk cavities: Non-Hermitian physics and asymmetric backscattering in ray dynamics

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Abstract

In optical microdisk cavities with boundary deformations the backscattering between clockwise and counter-clockwise propagating waves is in general asymmetric. The striking consequence of this asymmetry is that these apparently weakly open systems show pronounced non-Hermitian phenomena. The optical modes appear in non-orthogonal pairs, where both modes copropagate in a preferred sense of rotation, i.e. the modes exhibit a finite chirality. Full asymmetry in the backscattering results in a non-Hermitian degeneracy (exceptional point) where the deviation from closed system evolution is strongest. We study the effects of asymmetric backscattering in ray dynamics. For this purpose, we construct a finite approximation of the Frobenius-Perron operator for deformed microdisk cavities, which describes the dynamics of intensities in phase space. Eigenstates of the Frobenius-Perron operator show nice analogies to optical modes: they come in non-orthogonal copropagating pairs and have a finite chirality. We introduce a new cavity system with a smooth asymmetric boundary deformation where we demonstrate our results and we illustrate the main aspects with the help of a simple analytically solvable 1D model.

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Kullig, J., & Wiersig, J. (2016). Frobenius-Perron eigenstates in deformed microdisk cavities: Non-Hermitian physics and asymmetric backscattering in ray dynamics. New Journal of Physics, 18(1). https://doi.org/10.1088/1367-2630/18/1/015005

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