Ultrafast programmable Bragg reflection in photonic integrated circuits
Abstract
Distributed Bragg reflectors (DBRs) are foundational building blocks of classical and quantum photonic technologies. However, their optical responses are typically fixed upon fabrication, limiting circuit robustness, reconfigurability, and functionality in applications from high-speed communications to quantum computing. Here, we demonstrate photonic chip-based programmable DBRs at telecommunications wavelengths, which are formed by electro-optically inducing refractive index contrast between periodic ferroelectric domains in thin-film lithium niobate waveguides. We achieve voltage-controlled Bragg reflection from zero to near-unity, and gigahertz-speed reflectivity modulation. Our results bring DBRs into the ultrafast programmable regime, opening new opportunities in topological photonics, cavity quantum electrodynamics, integrated lasers, and optical interconnects. The interplay between nanoscale ferroelectric domain engineering and strong electro-optic nonlinearity establishes a new design strategy for nanophotonic devices, otherwise inaccessible in bulk media.
Cite
@article{arxiv.2607.14565,
title = {Ultrafast programmable Bragg reflection in photonic integrated circuits},
author = {Yunxiang Song and Pawan Ratra and Danxian Liu and Jiayu Yang and Zhongshu Liu and Urban Senica and Salma Mohideen and Mingjie Zhang and Xudong Li and Donald Witt and Joshua Mornhinweg and Norman Lippok and Eric Mazur and Federico Capasso and Marko Lončar},
journal= {arXiv preprint arXiv:2607.14565},
year = {2026}
}