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Please use this identifier to cite or link to this item: http://lrcdrs.bennett.edu.in:80/handle/123456789/1959
Title: Numerical investigation of a Ge1-xSnx-on-AlN waveguide and its sensing mechanism for the detection of trace gases in the mid-infrared regime
Authors: Pandey, Ankit
Keywords: Waveguide sensors
Chalcogenide glass
Effective refractive index
Evanescent waves
Infrared sensors
Optical sensing
Issue Date: 4-May-2023
Publisher: OPTICA
Abstract: This work reports the integration of a Ge1−xSnx -on-AlN optical waveguide (WG) on SiO2 substrate to facilitate mid-infrared (MIR) trace gas detection. Here, the proposed structure makes use of Ge1−xSnx in the core of the WG and the AlN cladding; this enables the effective guidance and confinement of a broad spectrum of MIR light waves within the GeSn WG. The gas detection mechanism of the device is based on the evanescent wave field component of a guided mode to examine particular molecular absorption/trace gas characteristics of the upper cladding environment. The designed WGs exhibit high power confinement (∼ 90%) and low propagation loss of 0.61– 1.18 dB/cm at λ = 4.3−4.74 µm with x = 6% in the Ge1−xSnx core. We also discuss the capability of the proposed WG to detect trace gases such as CO, CO2, and N2O. The results show that the minimum detectable concentrations (Cmin) of these gases are ∼0.42, 0.12, and 0.16 ppm, respectively, for x = 6%. These encouraging results enable a new sensor platform for GeSn-basedMIR trace/atmospheric gas detection. "
URI: http://lrcdrs.bennett.edu.in:80/handle/123456789/1959
ISSN: 0740-3224
Appears in Collections:Journal Articles_ECE

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