Abstract
We apply periodic orbit theory to a two-dimensional nonintegrable billiard system whose boundary is varied smoothly from a circular to an equilateral triangular shape. Although the classical dynamics becomes chaotic with increasing triangular deformation, it exhibits an astonishingly pronounced shell effect on its way through the shape transition. A semiclassical analysis reveals that this shell effect emerges from a codimension-2 bifurcation of the triangular periodic orbit. Gutzwiller's semiclassical trace formula, using a global uniform approximation for the bifurcation of the triangular orbit and including the contributions of the other isolated orbits, describes very well the coarse-grained quantum-mechanical level density of this system. We also discuss the role of discrete symmetry for the large shell effect obtained here. © 2008 The American Physical Society.
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CITATION STYLE
Arita, K. I., & Brack, M. (2008). Anomalous shell effect in the transition from a circular to a triangular billiard. Physical Review E - Statistical, Nonlinear, and Soft Matter Physics, 77(5). https://doi.org/10.1103/PhysRevE.77.056211
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