A multi-mechanism resonance-enhanced fiber-optic photoacoustic multi-gas sensor (MR-FOPMS) is reported, in which the acoustic resonance of the T-type resonator is employed for C2H2 gas sensing and the mechanical resonance of the silicon cantilever is employed for the detection of CH4 gas sensing. The silicon cantilever fiber-optic microphone and T-type photoacoustic resonator are designed using theoretical and finite element methods. The optimized cavity volume of the entire sensor is only 9.3 cm3 and the optimized silicon cantilever microphone has an ultra-high sensitivity of 62540.2 nm/Pa at the resonance. The ability of the sensor to detect multiple gases is demonstrated by simultaneous measurement of C2H2 and CH4 using two DFB lasers at 1532.8 nm and 1650.96 nm as excitation sources. The lowest detection limits of the sensor are determined to be 158 and 382 ppb for C2H2 and CH4, respectively, corresponding to normalized noise equivalent absorption coefficients of 2.82 × 10-9, 1.43 × 10-9 cm−1 W Hz−1/2, respectively.
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