Broadband and fabrication-tolerant 3-dB couplers with topological valley edge modes
Abstract
3-dB couplers, which are commonly used in photonic integrated circuits for on-chip information processing, precision measurement, and quantum computing, face challenges in achieving robust performance due to their limited 3-dB bandwidths and sensitivity to fabrication errors. To address this, we introduce topological physics to nanophotonics, developing a framework for topological 3-dB couplers. These couplers exhibit broad working wavelength range and robustness against fabrication dimensional errors. By leveraging valley-Hall topology and mirror symmetry, the photonic-crystal-slab couplers achieve ideal 3-dB splitting characterized by a wavelength-insensitive scattering matrix. Tolerance analysis confirms the superiority on broad bandwidth of 48 nm and robust splitting against dimensional errors of 20 nm. We further propose a topological interferometer for on-chip distance measurement, which also exhibits robustness against dimensional errors. This extension of topological principles to the fields of interferometers, may open up new possibilities for constructing robust wavelength division multiplexing, temperature-drift-insensitive sensing, and optical coherence tomography applications.
Keywords
Cite
@article{arxiv.2403.16538,
title = {Broadband and fabrication-tolerant 3-dB couplers with topological valley edge modes},
author = {Guo-Jing Tang and Xiao-Dong Chen and Lu Sun and Chao-Heng Guo and Meng-Yu Li and Zhong-Tao Tian and Hou-Hong Chen and Hong-Wei Wang and Qi-Yao Sun and Ying-Di Pan and Xin-Tao He and Yi-Kai Su and Jian-Wen Dong},
journal= {arXiv preprint arXiv:2403.16538},
year = {2024}
}
Comments
20 pages, 4 figures