Please use this identifier to cite or link to this item: https://doi.org/10.1021/acs.nanolett.2c01198
Title: Larger-Than-Unity External Optical Field Confinement Enabled by Metamaterial-Assisted Comb Waveguide for Ultrasensitive Long-Wave Infrared Gas Spectroscopy
Authors: Liu, Weixin 
Ma, Yiming 
Liu, Xinmiao 
Zhou, Jingkai 
Xu, Cheng
Dong, Bowei 
Lee, Chengkuo 
Keywords: Science & Technology
Physical Sciences
Technology
Chemistry, Multidisciplinary
Chemistry, Physical
Nanoscience & Nanotechnology
Materials Science, Multidisciplinary
Physics, Applied
Physics, Condensed Matter
Chemistry
Science & Technology - Other Topics
Materials Science
Physics
absorption spectroscopy
waveguide sensors
long-wave infrared
all-dielectric metamaterial
silicon photonics
ABSORPTION-SPECTROSCOPY
SENSOR
BEAMSPLITTER
DESIGN
SLOT
Issue Date: 27-Jun-2022
Publisher: AMER CHEMICAL SOC
Citation: Liu, Weixin, Ma, Yiming, Liu, Xinmiao, Zhou, Jingkai, Xu, Cheng, Dong, Bowei, Lee, Chengkuo (2022-06-27). Larger-Than-Unity External Optical Field Confinement Enabled by Metamaterial-Assisted Comb Waveguide for Ultrasensitive Long-Wave Infrared Gas Spectroscopy. NANO LETTERS 22 (15) : 6112-6120. ScholarBank@NUS Repository. https://doi.org/10.1021/acs.nanolett.2c01198
Abstract: Nanophotonic waveguides that implement long optical pathlengths on chips are promising to enable chip-scale gas sensors. Nevertheless, current absorption-based waveguide sensors suffer from weak interactions with analytes, limiting their adoptions in most demanding applications such as exhaled breath analysis and trace-gas monitoring. Here, we propose an all-dielectric metamaterial-assisted comb (ADMAC) waveguide to greatly boost the sensing capability. By leveraging large longitudinal electric field discontinuity at periodic high-index-contrast interfaces in the subwavelength grating metamaterial and its unique features in refractive index engineering, the ADMAC waveguide features strong field delocalization into the air, pushing the external optical field confinement factor up to 113% with low propagation loss. Our sensor operates in the important but underdeveloped long-wave infrared spectral region, where absorption fingerprints of plentiful chemical bonds are located. Acetone absorption spectroscopy is demonstrated using our sensor around 7.33 μm, showing a detection limit of 2.5 ppm with a waveguide length of only 10 mm.
Source Title: NANO LETTERS
URI: https://scholarbank.nus.edu.sg/handle/10635/239153
ISSN: 1530-6984
1530-6992
DOI: 10.1021/acs.nanolett.2c01198
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