Gyromorphs: a new class of functional disordered materials
Abstract
We introduce a new class of functional correlated disordered materials, termed Gyromorphs, which uniquely combine liquid-like translational disorder with quasi-long-range rotational order, induced by a ring of delta peaks in their structure factor. We generate gyromorphs in and by spectral optimization methods, verifying that they display strong discrete rotational order but no long-range translational order, while maintaining rotational isotropy at short range for sufficiently large . Using a coupled dipoles approximation, we numerically show that these structures outperform quasicrystals, stealthy hyperuniformity, and Vogel spirals in the formation of low-index-contrast isotropic bandgaps in , for both scalar and vector waves, and open complete isotropic bandgaps in . This claim is further supported by analytical effective-medium theory and by numerical estimates of scattering mean-free paths. Finally, we introduce ``polygyromorphs'' with several rotational symmetries at different length scales (i.e., multiple rings of delta peaks), enabling the formation of multiple bandgaps in a single structure, thereby paving the way for fine control over optical properties.
Keywords
Cite
@article{arxiv.2410.09023,
title = {Gyromorphs: a new class of functional disordered materials},
author = {Mathias Casiulis and Aaron Shih and Stefano Martiniani},
journal= {arXiv preprint arXiv:2410.09023},
year = {2025}
}
Comments
10 pages, 10 figures including appendix. SI: 59 pages, 36 figures