4.6 Article

Observation of miniaturized bound states in the continuum with ultra-high quality factors

Journal

SCIENCE BULLETIN
Volume 67, Issue 4, Pages 359-366

Publisher

ELSEVIER
DOI: 10.1016/j.scib.2021.10.020

Keywords

Bound state in the continuum; Photonic crystal; Topological photonics; High-Q cavity

Funding

  1. National Natural Science Foundation of China [61922004, 62135001]
  2. National Key Research and Development Program of China [2020YFB1806405]
  3. Major Key Project of PCL [PCL2021A14]
  4. Open Fund of the State Key Laboratory of Integrated Optoelectronics, US National Science Foundation through the University of Pennsylvania Mate-rial Research Science and Engineering Center [DMR-1720530]
  5. US Office of Naval Research (ONR) Multidisciplinary University Research Initiative (MURI) [N00014-20-1-2325]
  6. US Army Research Office [W911-NF-19- 1-0087]
  7. High-performance Computing Platform of Peking University

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This study presents a compound method that combines lateral mirrors and bound states in the continuum to achieve on-chip optical cavities with high quality factors and small modal volumes. Unlike traditional methods, this approach enables light trapping in all three dimensions and demonstrates high quality factors and low modal volumes.
Light trapping is a constant pursuit in photonics because of its importance in science and technology. Many mechanisms have been explored, including the use of mirrors made of materials or structures that forbid outgoing waves, and bound states in the continuum that are mirror-less but based on topology. Here we report a compound method, combining lateral mirrors and bound states in the continuum in a cooperative way, to achieve a class of on-chip optical cavities that have high quality factors and small modal volumes. Specifically, light is trapped in the transverse direction by the photonic band gap of the lateral hetero-structure and confined in the vertical direction by the constellation of multiple bound states in the continuum. As a result, unlike most bound states in the continuum found in photonic crystal slabs that are de-localized Bloch modes, we achieve light-trapping in all three dimensions and experimentally demonstrate quality factors as high as Q = 1.09 x 10(6) and modal volumes as low as V = 17.74 (lambda(0)/n)(3) in the telecommunication regime. We further prove the robustness of our method through the statistical study of multiple fabricated devices. Our work provides a new method of light trapping, which can find potential applications in photonic integration, nonlinear optics and quantum computing. (C) 2021 Science China Press. Published by Elsevier B.V. and Science China Press.

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