| Literature DB >> 22303143 |
Angela Elia1, Pietro Mario Lugarà, Cinzia Di Franco, Vincenzo Spagnolo.
Abstract
The paper provides an overview on the use of photoacoustic sensors based on semiconductor laser sources for the detection of trace gases. We review the results obtained using standard, differential and quartz enhanced photoacoustic techniques.Entities:
Keywords: gas sensing; photoacoustic spectroscopy; quartz enhanced photoacoustic spectroscopy
Year: 2009 PMID: 22303143 PMCID: PMC3267191 DOI: 10.3390/s91209616
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1.Typical PA spectrometer.
PA detection of trace gases with NIR diode lasers.
| CO2 [ | Wavelength modulated DFB diode laser; | 100 s | 30 ppm | Dual-microphone resonant cell |
| C2H2 [ | Wavelength modulated DFB diode laser; | 3 ms | 10 ppm | Resonant on first longitudinal mode |
| CH4 | Fibre-pigtailed laser diodes, | 10 s | CH4: 27 ppb | Multi-gas PA resonant cell on first longitudinal mode |
| NH3 [ | Fibre amplified diode laser; | 10 s | 6 ppb | Resonant on first longitudinal mode f = 900 Hz |
PA detection of trace gases with QC lasers.
| NO [ | RT Pulsed DFB QCL; | 10 s | 150 ppb | 4-microphones resonant cell on first longitudinal mode f = 1.38 KHz |
| CH2O [ | RT Pulsed DFB QCL; | 10 s | 150 ppb | 4-microphones resonant cell on first longitudinal mode f = 1.38 KHz |
| NO2 [ | RT cw QCL (external grating cavity) λ = 6.25 μm, P = 300 mW | 1 s | 0.5 ppb | Resonant on first longitudinal mode |
| NO2 | RT Pulsed DFB QCLs; | - | ∼80 ppb | Differential PA cell resonant on first longitudinal mode f = 3.8 KHz |
| NH3 | RT Pulsed DFB QCL; | - | 30 ppb | Differential PA cell resonant on first longitudinal mode f = 3.8 KHz |
| HMDS | Cryogenically cooled pulsed Fabry-perot QCL | 10 s | 200 ppb | 4-microphones resonant cell on first longitudinal mode f = 1.38 KHz |
| O3 | RT Pulsed DFB QCL; | - | 100 ppb | Differential PA cell resonant on first longitudinal mode f = 3.8 KHz |
HMDS: hexamethyldisilazane
Figure 2.(a) Resonant PA cell with one resonator (typical resonator length of 100–300 mm) and two buffer volumes (half resonator length). (b) Differential PA cell. with two resonator tubes and acoustic filters
Figure 3.Schematic of the QEPAS trace gas sensor using a quantum cascade laser as an excitation source. (Reproduced with kind permission form Springer Science and Business Media [52]).
QEPAS detection of trace gases.
| H2O (N2) | 7,306.75 | 60 | 1.9 × 10−9 | 9.5 | 0.09 |
| HCN(air: 50% RH) | 6,539.11 | 60 | < 4.3 × 10−9 | 50 | 0.16 |
| C2H2 (N2) | 6,523.88 | 720 | 4.1 × 10−9 | 57 | 0.03 |
| NH3 (N2) | 6,528.76 | 575 | 3.1 × 10−9 | 60 | 0.06 |
| C2H4 (N2) | 6,177.07 | 715 | 5.4 × 10−9 | 15 | 1.7 |
| CH4 (N2+1.2% H2O) | 6,057.09 | 760 | 3.7 × 10−9 | 16 | 0.24 |
| CO2 (breath) | 6,361.25 | 150 | 8.2 × 10−9 | 45 | 40 |
| H2S | 6,357.63 | 780 | 5.6 × 10−9 | 45 | 5 |
| CO2 (N2+1.5% H2O) | 4,991.26 | 50 | 1.4 × 10−8 | 4.4 | 18 |
| CH2O | 2,804.90 | 75 | 8.7 × 10−9 | 7.2 | 0.12 |
| CO (N2) | 2,196.66 | 50 | 5.3 × 10−7 | 13 | 0.5 |
| CO (propylene) | 2,196.66 | 50 | 7.4 × 10−8 | 6.5 | 0.14 |
| N2O (air+5% SF6) | 2,195.63 | 50 | 1.5 × 10−8 | 19 | 0.007 |
| C2H5OH (N2) | 1,934.2 | 770 | 2.2 × 10−7 | 10 | 90 |
| C2HF5 (N2) | 1,208.62 | 770 | 7.8 × 10−9 | 6.6 | 0.009 |
| NH3 (N2) | 1,046.39 | 110 | 1.6 × 10−8 | 20 | 0.006 |
NNEA – normalized noise equivalent absorption coefficient.
NEC – noise equivalent concentration for available laser power and τ = 1 s time constant, 18 dB/oct filter slope.