Three-dimensional photonic band gap cavity with finite support: enhanced energy density and optical absorption
D. Devashish, Oluwafemi Ojambati, Shakeeb B. Hasan, J. J. W. van der, Vegt, and Willem L. Vos

TL;DR
This study numerically investigates a finite-support 3D photonic band gap crystal with an embedded resonant cavity, revealing enhanced energy density, high quality factors, and potential for optical sensing and photovoltaics.
Contribution
It introduces a finite element modeling approach for finite-support 3D photonic crystals with embedded cavities, identifying resonances and energy enhancements.
Findings
Resonances identified with quality factors up to 1000.
Energy density enhanced up to 2400 times at resonances.
Substantial absorption in the visible range within the band gap.
Abstract
We study numerically the transport and storage of light in a 3D photonic band gap crystal doped by a single embedded resonant cavity. The crystal has finite support since it is surrounded by vacuum, as in experiments. Therefore, we employ the finite element method to model the diamond-like inverse woodpile crystal that consists of two orthogonal arrays of pores in a high-index dielectric such as silicon and that has experimentally been realized by CMOS-compatible methods. A point defect that functions as the resonant cavity is formed in the proximal region of two selected orthogonal pores with a radius smaller than the ones in the bulk of the crystal. We present a field-field cross-correlation method to identify resonances in the finite-support crystal with defect states that appear in the 3D photonic band gap of the infinite crystal. Out of 5 observed angle-independent cavity…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
