1. Chang, R. K., Optical Processes in Microcavities, World Scientific, Singapore, 1996. Google Scholar
2. Vahala, K., Optical Microcavities, World Scientific, Singapore, 2004. Google Scholar
3. Cao, H. and J. Wiersig, "Dielectric microcavities: Model systems for wave chaos and non-Hermitian physics," Rev. Mod. Phys., Vol. 87, No. 1, 61-111, 2015.
doi:10.1103/revmodphys.87.61 Google Scholar
4. Schwefel, H. G. L., N. B. Rex, H. E. Tureci, R. K. Chang, A. D. Stone, T. Ben-Messaoud, and J. Zyss, "Dramatic shape sensitivity of directional emission patterns from similarly deformed cylindrical polymer lasers," J. Opt. Soc. Am. B, Vol. 21, No. 5, 923-934, 2004.
doi:10.1364/josab.21.000923 Google Scholar
5. Wiersig, J. and M. Hentschel, "Combining directional light output and ultralow loss in deformed microdisks," Phys. Rev. Lett., Vol. 100, No. 3, 033901, 2008.
doi:10.1103/physrevlett.100.033901 Google Scholar
6. Hentschel, M. and K. Richter, "Quantum chaos in optical systems: The annular billiard," Phys. Rev. E, Vol. 66, No. 5, 056207, 2002.
doi:10.1103/physreve.66.056207 Google Scholar
7. Tanaka, T., M. Hentschel, T. Fukushima, and T. Harayama, "Classical phase space revealed by coherent light," Phys. Rev. Lett., Vol. 98, No. 3, 033902, 2007.
doi:10.1103/physrevlett.98.033902 Google Scholar
8. Song, Q. H., L. Ge, A. D. Stone, H. Cao, J. Wiersig, J.-B. Shim, J. Unterhinninghofen, W. Fang, and G. S. Solomon, "Directional laser emission from a wavelength-scale chaotic microcavity," Phys. Rev. Lett., Vol. 105, No. 10, 103902, 2010.
doi:10.1103/physrevlett.105.103902 Google Scholar
9. Altmann, E. G., G. Del Magno, and M. Hentschel, "Non-Hamiltonian dynamics in optical microcavities resulting from wave-inspired corrections to geometric optics," EPL, Vol. 84, No. 1, 10008, 2008.
doi:10.1209/0295-5075/84/10008 Google Scholar
10. Goos, F. and H. Hänchen, "Ein neuer und Fundamentaler Versuch Zur Totalreflexion," Annalen der Physik, Vol. 436, No. 7-8, 333-346, 1947.
doi:10.1002/andp.19474360704 Google Scholar
11. Artmann, K., "Berechnung der Seitenversetzung des totalreflektierten Strahles," Annalen der Physik, Vol. 437, No. 1-2, 87-102, 1948.
doi:10.1002/andp.19484370108 Google Scholar
12. Lai, H. M., F. C. Cheng, and W. K. Tang, "Goos-Hänchen effect around and off the critical angle," J. Opt. Soc. Am. A, Vol. 3, No. 4, 550-557, 1986. Google Scholar
13. Tureci, H. E. and A. D. Stone, "Deviation from Snell's law for beams transmitted near the critical angle: Application to microcavity lasers," Opt. Lett., Vol. 27, No. 1, 7-9, 2002.
doi:10.1364/ol.27.000007 Google Scholar
14. Schomerus, H. and M. Hentschel, "Correcting ray optics at curved dielectric microresonator interfaces: Phase-space unification of Fresnel filtering and the Goos-Hänchen shift," Phys. Rev. Lett., Vol. 96, No. 24, 243903, 2006.
doi:10.1103/physrevlett.96.243903 Google Scholar
15. Stockschläder, P., J. Kreismann, and M. Hentschel, "Curvature dependence of semiclassical corrections to ray optics: How Goos-Hänchen shift and Fresnel filtering deviate from the planar case result," EPL, Vol. 107, No. 6, 64001, 2014. Google Scholar
16. Horowitz, B. R. and T. Tamir, "Lateral displacement of a light beam at a dielectric interface," J. Opt. Soc. Am., Vol. 61, No. 5, 586-594, 1971.
doi:10.1364/josa.61.000586 Google Scholar
17. Lotsch, H. K. V., "Beam displacement at total reflection: The Goos-Hänchen effect I," OPTIK, Vol. 32, No. 2, 116-137, 1970. Google Scholar
18. Hentschel, M. and H. Schomerus, "Fresnel laws at curved dielectric interfaces of microresonators," Phys. Rev. E, Vol. 65, No. 4, 045603, 2002.
doi:10.1103/physreve.65.045603 Google Scholar
19. Kotik, D. and M. Hentschel, "How curvature affects the far-field emission from deformed optical microcavities," J. Opt., Vol. 15, No. 1, 014010, 2013.
doi:10.1088/2040-8978/15/1/014010 Google Scholar
20. Merano, M., A. Aiello, M. P. van Exter, and J. P. Woerdmann, "Observing angular deviations in the specular reflection of a light beam," Nat. Photon., Vol. 3, No. 6, 337-340, 2009.
doi:10.1038/nphoton.2009.75 Google Scholar
21. Fiedler-Ferrari, N., H. M. Nussenzveig, and W. J. Wiscombe, "Theory of near-critical-angle scattering from a curved interface," Phys. Rev. A, Vol. 43, No. 2, 1005-1038, 1991.
doi:10.1103/physreva.43.1005 Google Scholar
22. Bliokh, K. Y. and A. Aiello, "Goos-Hänchen and Imbert-Fedorov beam shifts: An overview," J. Opt., Vol. 15, No. 1, 014001, 2013. Google Scholar
23. Götte, J. B., S. Shinohara, and M. Hentschel, "Are Fresnel filtering and the angular GoosHänchen shift the same?," J. Opt., Vol. 15, No. 1, 014009, 2013. Google Scholar
24. Porras, M. A., "Moment-method evaluation of the angular and lateral shifts of reflected light beams," Opt. Commun., Vol. 131, No. 1-3, 13-20, 1996.
doi:10.1016/0030-4018(96)00337-9 Google Scholar
25. Jackson, J. D., Classical Electrodynamics, 3rd Ed., Wiley, New York, 1999. Google Scholar
26. Oskooi, A. F., D. Roundy, M. Ibanescu, P. Bermel, and J. D. Joannopoulos, "MEEP: A flexible free-software package for electromagnetic simulations by the FDTD method," Comput. Phys. Commun., Vol. 181, No. 3, 687-702, 2010.
doi:10.1016/j.cpc.2009.11.008 Google Scholar
27. Song, Q., W. Fang, B. Liu, S.-T. Ho, G. S. Solomon, and H. Cao, "Chaotic microcavity laser with high quality factor and unidirectional output," Phys. Rev. A, Vol. 80, No. 4, 041807, 2009.
doi:10.1103/physreva.80.041807 Google Scholar
28. Shinohara, S., M. Hentschel, J. Wiersig, T. Sasaki, and T. Harayama, "Ray-wave correspondence in limaçon-shaped semiconductor microcavities," Phys. Rev. A, Vol. 80, No. 3, 031801, 2009.
doi:10.1103/physreva.80.031801 Google Scholar