Porous-Silicon Assisted Hybrid Plasmonic Slot Waveguide Based On-Chip Ethanol Sensor
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Date
2022
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Journal ISSN
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Publisher
Institute of Electrical and Electronics Engineers Inc.
Abstract
Refractive index (RI) sensors have an overarching compass jutting into the biological and chemical fields and hence are efficacious. The evinced work appertains with an infra-red (IR)-band ethanol sensor, perceived with a Metal-Insulator-Semiconductor-Insulator-Metal (MISIM) waveguide structure consisting of porous-silicon as the absorbing/sensing medium. It is validated through modeling, and numerical simulations that the enhanced electric field confined into a low index slot undergoes a red-shift in wavelength in the presence of harmful ethanol. The red-shift in wavelength can be controlled by changing the silicon porosity and the physical dimensions of the hybrid waveguide. With finite-element-method based COMSOL Multiphysics simulations, we have obtained the optimized metrics of the sensor namely sensitivity (S TM) = 400.43-612.43 nm/RIU, figure of merit (FoM) = 12.42-19.46/RIU, and quality factor (Q-factor) = 46.8-52.9, for 10% to 25% p-Si porosity. The fabrication stages of the on-chip sensor are also articulated in brief. The detailed assessment shows that this sensor is a feasible choice for ethanol detection in hazardous environments. © 2001-2012 IEEE.
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Keywords
Ethanol, Finite element method, Metal insulator boundaries, Metals, Optical sensors, Optical waveguides, Plasmonics, Porosity, Porous silicon, Q factor measurement, Refraction, Refractometers, Semiconductor insulator boundaries, Surface plasmon resonance, Ethanol sensors, Hybrid plasmonic waveguides, Infrared bands, Metal-insulator-semiconductor-insulator-metal, Metal-insulator-semiconductors, On chips, Quality factors, Refractive index sensor, Slot waveguide, Refractive index
Citation
IEEE Sensors Journal, 2022, 22, 3, pp. 2062-2069
