Bounds on spectral gaps of Hyperbolic spin surfaces
Abstract
We describe a method for constraining Laplacian and Dirac spectra of two dimensional compact orientable hyperbolic spin manifolds and orbifolds. The key ingredient is an infinite family of identities satisfied by the spectra. These spectral identities follow from the consistency between 1) the spectral decomposition of functions on the spin bundle into irreducible representations of and 2) associativity of pointwise multiplication of functions. Applying semidefinite programming methods to our identities produces rigorous upper bounds on the Laplacian spectral gap as well as on the Dirac spectral gap conditioned on the former. In several examples, our bounds are nearly sharp; a numerical algorithm based on the Selberg trace formula shows that the orbifold, a particular surface with signature , and the Bolza surface nearly saturate the bounds at genus , and respectively. Under additional assumptions on the number of harmonic spinors carried by the spin-surface, we obtain more restrictive bounds on the Laplacian spectral gap. In particular, these bounds apply to hyperelliptic surfaces. We also determine the set of Laplacian spectral gaps attained by all compact orientable two-dimensional hyperbolic spin orbifolds. We show that this set is upper bounded by ; this bound is nearly saturated by the orbifold, whose first non-zero Laplacian eigenvalue is .
Keywords
Cite
@article{arxiv.2311.13330,
title = {Bounds on spectral gaps of Hyperbolic spin surfaces},
author = {Elliott Gesteau and Sridip Pal and David Simmons-Duffin and Yixin Xu},
journal= {arXiv preprint arXiv:2311.13330},
year = {2023}
}
Comments
60 Pages, 3 Tables, 11 Figures