Optical microcavity characterization via resonance spectra and modes

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Abstract

This paper describes how resonance spectra and mode profiles can be used to characterize and quantify the mode-shaping effects in open-access plano-concave optical microcavities. The presented semi-analytic theory is based on the application of perturbation theory to the round-trip evolution of the optical field. It includes various mirror-shape and nonparaxial effects and extends the nonparaxial theory presented in [Exter et al., Phys. Rev. A 106, 013501 (2022)] and verified in [Koks et al., Phys. Rev. A 105, 063502 (2022)] to the common case of an anisotropic Gaussian mirror. The presented measurements and analyses of resonance spectra and mode profiles demonstrate how the different mode-shaping effects can be individually distinguished and quantified. Spin-orbit coupling, which is one of the nonparaxial effects, is prominently visible in the intriguing polarization patterns of the resonant modes, while polarization tomography yields the shape-induced birefringence and associated polarization splitting of the fundamental modes.

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Post, J., He, C., Koks, C., van Velzen, R., Corazza, A., Fontana, Y. L., … van Exter, M. P. (2025). Optical microcavity characterization via resonance spectra and modes. Physical Review A, 112(3). https://doi.org/10.1103/y63l-zwr5

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