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On-Chip Silicon Bragg-Grating-Waveguide-Based Polymer Slot for Gas Sensing

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This work presents a novel CO2 gas sensor based on a slotted polymer-phaseshift Bragg grating (SP-PSBG) waveguide filled with polyhexamethylene biguanide (PHMB) as the sensing medium. The transmission resonance, characterized by a narrow peak with a full width at half maximum (FWHM) of 1.6 nm within the Bragg grating bandgap, is highly responsive to refractive index changes in PHMB caused by variations in CO2 concentration. Numerical simulations demonstrate a sensitivity of 14.4 pm/ppm, outperforming conventional gas sensors based on functional material coatings. This enhanced performance comes from the direct interaction between the PHMB-filled resonant structure and the cladding that contains CO2 molecules, eliminating the need for polymer-coated cladding layers. The optimization approach employed in this design focuses on maximizing the optical confinement factor within the PHMB-filled slot, leading to an effective overlap between the guided optical mode and the sensing material.
Title: On-Chip Silicon Bragg-Grating-Waveguide-Based Polymer Slot for Gas Sensing
Description:
This work presents a novel CO2 gas sensor based on a slotted polymer-phaseshift Bragg grating (SP-PSBG) waveguide filled with polyhexamethylene biguanide (PHMB) as the sensing medium.
The transmission resonance, characterized by a narrow peak with a full width at half maximum (FWHM) of 1.
6 nm within the Bragg grating bandgap, is highly responsive to refractive index changes in PHMB caused by variations in CO2 concentration.
Numerical simulations demonstrate a sensitivity of 14.
4 pm/ppm, outperforming conventional gas sensors based on functional material coatings.
This enhanced performance comes from the direct interaction between the PHMB-filled resonant structure and the cladding that contains CO2 molecules, eliminating the need for polymer-coated cladding layers.
The optimization approach employed in this design focuses on maximizing the optical confinement factor within the PHMB-filled slot, leading to an effective overlap between the guided optical mode and the sensing material.

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