| Literature DB >> 30618484 |
Matthew A Stott1, Vahid Ganjalizadeh2, Gopikrishnan Meena2, Johnny McMurray1, Maclain Olsen1, Marcos Orfila1, Holger Schmidt2, Aaron R Hawkins1.
Abstract
Multimode interference (MMI) waveguides can be used to create wavelength-dependent spot patterns which enables simultaneous analyte detection on a single optofluidic chip, useful for disease diagnostics. The fidelity of such multi-spot patterns is important for high sensitivity and accurate target identification. Buried rib structures have been incorporated into these SiO2-based waveguides to improve environmental stability. Through experiments and simulation, this letter explores design parameters for a buried MMI rib waveguide based on anti-resonant reflecting optical waveguides in order to produce high-fidelity spot patterns. Optimal rib heights and widths are reported in the context of available microfabrication etch technology and performance for an optimized biosensor is shown.Entities:
Keywords: Biophotonics; biosensors; dielectric waveguides; fluorescence spectroscopy; integrated optics; multimode interference waveguides; multiplexing
Year: 2018 PMID: 30618484 PMCID: PMC6319872 DOI: 10.1109/LPT.2018.2858258
Source DB: PubMed Journal: IEEE Photonics Technol Lett ISSN: 1041-1135 Impact factor: 2.468