refractive index sensing of gases based on a one-dimensional photonic crystal nanocavity
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2015
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Abstract
Silicon photonic crystal sensors have become very attractive for various
optical sensing applications. Using silicon as a material platform provides
the ability to fabricate sensors with other photonic devices on a single
chip. In this paper, a new optical sensor based on optical resonance in a
one-dimensional silicon photonic crystal with an air defect is theoretically
studied for refractive index sensing in the infrared wavelength region.
The air defect introduces a cavity into the photonic crystal, making it
suitable for probing the properties of a gas found within the cavity. This
photonic crystal nanocavity is designed to oscillate at a single mode with a
high quality factor, allowing for refractive index sensing of gases with a
high sensitivity. A method is presented to maximize the sensitivity of the
sensor and to obtain a very narrow bandwidth cavity mode for good sensor
resolution. We change the thickness of the air layers linearly in the
photonic crystals on both sides of the nanocavity and show that a sensitivity
of 1200 nm RIU−1 can be achieved. We present a detailed analysis of
the sensor and variations of the layer thicknesses, the cavity length, and
the number of periodic layers in the photonic crystal are investigated. This
optical sensor has a much simpler design and higher sensitivity compared to
other photonic crystal sensors reported previously.
| Reference Key |
mohebbi2015journalrefractive
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|---|---|
| Authors | ;M. Mohebbi |
| Journal | arabic literature in the post-classical period |
| Year | 2015 |
| DOI |
10.5194/jsss-4-209-2015
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| URL | |
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