Monolithically integrated mid-infrared lab-on-a-chip using plasmonics and quantum cascade structures
Citations Over TimeTop 10% of 2014 papers
Abstract
The increasing demand of rapid sensing and diagnosis in remote areas requires the development of compact and cost-effective mid-infrared sensing devices. So far, all miniaturization concepts have been demonstrated with discrete optical components. Here we present a monolithically integrated sensor based on mid-infrared absorption spectroscopy. A bi-functional quantum cascade laser/detector is used, where, by changing the applied bias, the device switches between laser and detector operation. The interaction with chemicals in a liquid is resolved via a dielectric-loaded surface plasmon polariton waveguide. The thin dielectric layer enhances the confinement and enables efficient end-fire coupling from and to the laser and detector. The unamplified detector signal shows a slope of 1.8-7 μV per p.p.m., which demonstrates the capability to reach p.p.m. accuracy over a wide range of concentrations (0-60%). Without any hybrid integration or subwavelength patterning, our approach allows a straightforward and cost-saving fabrication.
Related Papers
- → Characteristics of surface plasmon polaritons at a chiral–metal interface(2014)59 cited
- → Compact Spoof Surface Plasmon Polariton Waveguides With Simple Configurations and Good Performance(2021)27 cited
- → Controlling the Anti-Crossing between Localized Surface Plasmons and Surface Plasmon Polaritons(2010)2 cited
- → Numerical analysis of terahertz surface plasmon polaritons propagating in a parallel plate configuration(2016)3 cited
- → Demonstration of a Terahertz Coplanar-Strip Spoof-Surface-Plasmon Polariton Low Pass Filter(2023)2 cited