Nanometer-scale photon confinement in topology-optimized dielectric cavities
Abstract
Nanotechnology enables in principle a precise mapping from design to device but relied so far on human intuition and simple optimizations. In nanophotonics, a central question is how to make devices in which the light-matter interaction strength is limited only by materials and nanofabrication. Here, we integrate measured fabrication constraints into topology optimization, aiming for the strongest possible light-matter interaction in a compact silicon membrane, demonstrating an unprecedented photonic nanocavity with a mode volume of , quality factor , and footprint for telecom photons with a nm wavelength. We fabricate the cavity, which confines photons inside 8 nm silicon bridges and use near-field optical measurements to perform the first experimental demonstration of photon confinement to a single hotspot well below the diffraction limit in dielectrics.
Cite
@article{arxiv.2108.01681,
title = {Nanometer-scale photon confinement in topology-optimized dielectric cavities},
author = {Marcus Albrechtsen and Babak Vosoughi Lahijani and Rasmus Ellebæk Christiansen and Vy Thi Hoang Nguyen and Laura Nevenka Casses and Søren Engelberth Hansen and Nicolas Stenger and Ole Sigmund and Henri Jansen and Jesper Mørk and Søren Stobbe},
journal= {arXiv preprint arXiv:2108.01681},
year = {2022}
}