LED-Based Photoacoustic NO2 Sensor with a Sub-ppb Detection Limit
Author(s) -
Juho Karhu,
Tuomas Hieta,
Farshid Manoocheri,
Markku Vainio,
Erkki Ikonen
Publication year - 2021
Publication title -
acs sensors
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.055
H-Index - 57
ISSN - 2379-3694
DOI - 10.1021/acssensors.1c01073
Subject(s) - detection limit , photoacoustic spectroscopy , materials science , wavelength , signal (programming language) , light emitting diode , optics , photoacoustic effect , detector , optoelectronics , photoacoustic imaging in biomedicine , dichroic glass , chemistry , physics , chromatography , computer science , programming language
A high-sensitivity light-emitting diode (LED)-based photoacoustic NO 2 sensor is demonstrated. Sensitive photoacoustic gas sensors based on incoherent light sources are typically limited by background noise and drifts due to a strong signal generated by light absorbed at the photoacoustic cell walls. Here, we reach a sub-ppb detection limit and excellent stability using cantilever-enhanced photoacoustic detection and perform a two-channel relative measurement. A white-light LED is used as a light source, and the spectrum is divided into two wavelength channels with a dichroic filter. The photoacoustic signals generated by the two wavelength channels are measured simultaneously and used to solve the NO 2 concentration. The background signal is highly correlated between the two channels, and its variations are suppressed in the relative measurement. A noise level below 1 ppb is reached with an averaging time of 70 s. This is, to the best of our knowledge, the first time a sub-ppb detection limit is demonstrated with an LED-based photoacoustic NO 2 sensor. As LEDs are available at a wide selection of emission wavelengths, the results show great potential for development of cost-effective and sensitive detectors for a variety of other trace gasses as well.
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