Spatially shaping waves to penetrate deep inside a forbidden gap
Abstract
It is well known that waves incident upon a crystal are transported only over a limited distance - the Bragg length - before being reflected by Bragg interference. Here, we demonstrate how to send waves much deeper into crystals, by studying light in exemplary two-dimensional silicon photonic crystals. By spatially shaping the optical wavefronts, we observe that the intensity of laterally scattered light, that probes the internal energy density, is enhanced at a tunable distance away from the front surface. The intensity is up to enhanced compared to random wavefronts and extends as far as the Bragg length. Our novel steering of waves inside a forbidden gap exploits the transport channels induced by unavoidable deviations from perfect periodicity, here unavoidable fabrication deviations.
Cite
@article{arxiv.2007.11107,
title = {Spatially shaping waves to penetrate deep inside a forbidden gap},
author = {Ravitej Uppu and Manashee Adhikary and Cornelis A. M. Harteveld and Willem L. Vos},
journal= {arXiv preprint arXiv:2007.11107},
year = {2021}
}
Comments
7 pages, 7 figures