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Jens H. Schmid

Researcher at National Research Council

Publications -  101
Citations -  5839

Jens H. Schmid is an academic researcher from National Research Council. The author has contributed to research in topics: Photonics & Metamaterial. The author has an hindex of 24, co-authored 69 publications receiving 4796 citations. Previous affiliations of Jens H. Schmid include University of British Columbia.

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Proceedings ArticleDOI

A Design Methodology for Resonant Sensors based on Subwavelength Grating Waveguides at 1.31 μm

TL;DR: In this article, the authors provide a family of sensitivity curves for the design of resonant evanescent field waveguide sensors based on subwavelength grating waveguides.
Journal ArticleDOI

Spectrum-free integrated photonic remote molecular identification and sensing

TL;DR: In this article, a silicon ring resonator with a transmission spectrum matched and cross-correlated to the quasi-periodic vibronic absorption lines of hydrogen cyanide is used for direct spectral molecular detection using a silicon nanophotonic waveguide resonator, obviating dispersive spectral acquisition.
Proceedings ArticleDOI

Athermal silicon subwavelength grating waveguides

TL;DR: Athermal silicon subwavelength grating waveguides are demonstrated in this paper, where numerical simulations and experiments for the waveguide thermo-optic coefficients, as well as fabrication tolerances and the thermal bandwidth are reported.

Si-Photonic Waveguide Grating Coupler Arrays for Wavefront Monitoring

TL;DR: A silicon photonic wavefront monitoring chip may be designed using arrays of surface grating couplers as discussed by the authors , which can monitor wavefront distortion across a pupil plane in adaptive optics systems for free space optical communications and astronomy.
Posted Content

Isolator-free Integration of C-band InAs-InP Quantum Dash Buried Heterostructure Lasers with Silicon Waveguides

TL;DR: An InAs-on-InP quantum dash buried heterostructure laser and silicon chip optimized for mutual integration by direct facet-to-facet coupling have achieved −1.2 dB coupling efficiency, with coupled laser RIN of −150 dB/Hz and 152 kHz linewidth.