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Spectrum-free integrated photonic remote molecular identification and sensing

Authors :
Dan-Xia Xu
Luc Simard
Pavel Cheben
Ernst J. W. de Mooij
Jens H. Schmid
Jean Lapointe
Mohsen Kamandar Dezfouli
Siegfried Janz
Shurui Wang
Rubin Ma
Daniele Melati
Adam Densmore
Ross Cheriton
Suresh Sivanandam
Source :
CHERITON, ROSS, SIVANANDAM, SURESH, DENSMORE, ADAM, DE MOOIJ, ERNST, MELATI, DANIELE, DEZFOULI, MOHSEN KAMANDAR, CHEBEN, PAVEL, XU, DANXIA, SCHMID, JENS H, LAPOINTE, JEAN, MA, RUBIN, WANG, SHURUI, SIMARD, LUC & JANZ, SIEGFRIED 2020, ' Spectrum-free integrated photonic remote molecular identification and sensing ', Optics Express, vol. 28, no. 19, pp. 27951-27965 . https://doi.org/10.1364/OE.400061
Publication Year :
2020

Abstract

Absorption spectroscopy is widely used in sensing and astronomy to understand molecular compositions on microscopic to cosmological scales. However, typical dispersive spectroscopic techniques require multichannel detection, fundamentally limiting the ability to detect extremely weak signals when compared to direct photometric methods. We report the realization of direct spectral molecular detection using a silicon nanophotonic waveguide resonator, obviating dispersive spectral acquisition. We use a thermally tunable silicon ring resonator with a transmission spectrum matched and cross-correlated to the quasi-periodic vibronic absorption lines of hydrogen cyanide. We show that the correlation peak amplitude is proportional to the number of overlapping ring resonances and gas lines, and that molecular specificity is obtained from the phase of the correlation signal in a single detection channel. Our results demonstrate on-chip correlation spectroscopy that is less restricted by the signal-to-noise penalty of other spectroscopic approaches, enabling the detection of faint spectral signatures.

Details

ISSN :
10944087
Volume :
28
Issue :
19
Database :
OpenAIRE
Journal :
Optics express
Accession number :
edsair.doi.dedup.....6bcd940469b5de384c875525c891575e