EVANESCENT-WAVE QUARTZ-ENHANCED PHOTOACOUSTIC SENSOR WITH RESONATOR ELEMENTS
20170292935 · 2017-10-12
Inventors
Cpc classification
International classification
Abstract
A novel evanescent-wave quartz-enhanced optical microfiber photoacoustic gas sensor is provided for detecting trace amounts of gas. Both fiber-taper based evanescent field and photoacoustic spectroscopy can be used to exploit the merits of both technologies. The use of a fiber half-taper into the tuning fork and microresonator tubes can result in reduced system size, simplified optical alignment, and high sensitivity. The techniques described can be used in chemical, biological and environmental sensing applications.
Claims
1. An evanescent-wave quartz enhanced microfiber photoacoustic detection device with oscillator and micro-resonator elements for detecting trace gas concentrations, the evanescent-wave quartz enhanced microfiber photoacoustic detection device comprising: a light source tuned to a wavelength corresponding to the optical absorption of a gas to be detected; an optical fiber; an input coupler connected to the optical fiber; a fiber-taper to generate an evanescent wave; a quartz tuning fork having its free arms arranged at the level of the fiber-taper to absorb a mechanical force generated following the optical absorption by the gas, the mechanical force exciting a piezoelectric mode of the quartz tuning fork and generating an electrical current; micro-resonators positioned near the quartz tuning fork to enhance the mechanical force; and means for amplifying and detecting a current generated by the quartz tuning fork to determine the concentration of the gas; wherein the fiber-taper, quartz tuning fork, and micro-resonators are assembled in a sealed gas cell for gas detection.
2. The device of claim 1, wherein the light source is an incident laser guided through the optical fiber into the fiber-taper.
3. The device of claim 1, wherein the fiber-taper is fabricated with a diameter of wavelength or subwavelength scale from a single mode fiber using a flame-brushing method or another fiber tapering method.
4. The device of claim 1, wherein the output of the microfiber is provided with focusing means.
5. The device of claim 1, wherein the fiber-taper is inserted into the resonator tubes and placed between two prongs of the quartz tuning fork without touching any surfaces.
6. The device of claim 2, wherein the fiber-taper is adjusted using visible light to ensure the strongest evanescent field output by the incident laser.
7. The device of claim 1, further comprising additional oscillator elements.
8. The device of claim 1, wherein the fiber-taper is inserted into a single resonator tube with a small hole/slit opening.
9. The device of claim 5, wherein the resonator tubes are made of stainless steel and a length of each is set for the first longitudinal mode resonance of the acoustic wave.
10. The device of claim 8, wherein the quartz tuning fork is placed next to the hole/slit opening of the resonator tube.
11. A method of photoacoustic detection, the method comprising: providing the device of claim 1; amplifying a current generated by the quartz tuning fork; and detecting the current generated by the quartz tuning fork.
12. The method of claim 11, wherein the light source is an incident laser guided through the optical fiber into the fiber-taper.
13. The method of claim 11, wherein the fiber-taper is fabricated with a diameter of wavelength or subwavelength scale from a single mode fiber using a flame-brushing method or another fiber tapering method.
14. The method of claim 11, wherein the output of the microfiber is provided with focusing means.
15. The method of claim 11, wherein the fiber-taper is inserted into the resonator tubes and placed between two prongs of the quartz tuning fork without touching any surfaces.
16. The method of claim 12, wherein the fiber-taper is adjusted using visible light to ensure the strongest evanescent field output by the incident laser.
17. The method of claim 11, further comprising additional oscillator elements.
18. The method of claim 11, wherein the fiber-taper is inserted into a single resonator tube with a small hole/slit opening.
19. The method of claim 15, wherein the resonator tubes are made of stainless steel and a length of each is set for the first longitudinal mode resonance of the acoustic wave.
20. The method of claim 18, wherein the quartz tuning fork is placed next to the hole/slit opening of the resonator tube.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DISCLOSURE OF THE INVENTION
[0017] Embodiments of the subject invention provide tnicrofiber photoacoustic detection devices for detecting the concentration of trace amounts of a target gas. A device can include a laser source tuned to the wavelength corresponding to the optical absorption of the target gas, a single mode fiber coupled with the laser for light delivery, a fiber-taper to generate evanescent waves for acoustic wave generation, an oscillator like quartz tuning fork to detect the acoustic waves, and/or micro-resonators positioned near the quartz tuning fork to enhance the acoustic signal.
[0018] Optical microfibers can be employed for robust light delivery and realize optical interconnection between optical devices on the microscale or nanoscale, The strong evanescent field generated by microfibers can also lead to high detection sensitivity for optical sensing applications. If an optical fiber without cladding is surrounded by gas that absorbs at the light wavelength, the evanescent wave penetrates into the region outside the fiber and transfers energy into the gas molecules. The use of an evanescent field for gas and liquid sensing has the advantages of low optical loss, easy alignment, and the potential of making integrated devices.
[0019] The principle of the photoacoustic gas sensor according to an embodiment of the subject invention, comprising a microfiber, a turning fork, and resonator elements, is illustrated generally at 100 in schematic form in
[0020] The following steps are designed to facilitate the assembly of the microfiber with the quartz tuning fork and acoustic resonators. First, a visible laser diode (typical wavelength of 650 nm) can be employed as the light source 110 to connect with the input fiber 115, The visible light leaking out of the fiber taper 125 can be observed. In this way, the position of the fiber-taper 125 can be easily adjusted so that the evanescent field 130 between the two prongs 140 of the quartz tuning fork 135 has the maximum power density. Then, the visible light can be switched to an infrared laser with its emission wavelength coincident with the absorption line of the target gas. Compared with the traditional open-path quartz-enhanced photoacoustic system (U.S. Pat. No. 7,245,380 B2,), the optical windows of the gas cell is eliminated in this technique. The evanescent wave 130 is confined closely around the fiber-taper leading to negligible optical noise, which enhances the detection sensitivity.
[0021] A large fraction of power existing in the evanescent field is required in this technique because the photoacoustic signal is proportional to the optical excitation power. The evanescent field 130 is related to the diameter of the fiber taper 125: the thinner the fiber diameter, the stronger the evanescent field. Thus, an ultrathin single mode fiber can be used to achieve high sensitivity.
[0022] If a fiber taper is placed between the two prongs of the quartz tuning fork 135 to generate evanescent-wave absorption, in the case of an optically thin gas sample, the detected acoustic signal S can be expressed as:
S=kγαxP.sub.0Q/F.sub.0, (Eq. 1)
[0023] where α (cm.sup.−1/(molecule cm.sup.−3) is the absorption coefficient of the target species; x (molecular/cm.sup.−3) is the species concentration; P.sub.0 (W) is the incident optical power; Q and f.sub.0 (Hz) are the quality factor and the resonant frequency of the quartz tuning fork, respectively; γ (γ<1) is the attenuation coefficient of the incident optical power associated with evanescent field; and k is a dimensionless coefficient describing the system parameters and acoustic transfer function. Therefore, a fiber taper with larger γ is required to obtain a stronger photoacoustic signal.
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[0026] In an embodiment, the quartz tuning fork can be integrated with the resonator tube using an alternative configuration. Different from the configuration 100 shown in
[0027] In an embodiment of the subject invention, a fiber half-taper with applications in a near-field scanning optical microscope can also be used in microfiber-based photoacoustic detection.
[0028] In a particular embodiment, a silica-core single mode fiber 115 of 11-μm core, 125-μm cladding and a typical attenuation of 0.25 dB/m at the optical wavelength of 2.3 μm is selected. The optimized parameters of flame scanning length down to 1 mm and scanning speed of 0.2 mm/s are selected to obtain a fiber half-taper 510 in length of 14 mm and taper angle of 0.25°. The laser radiation 110 is guided through the single mode fiber 115 to the half-taper 510 that is integrated with the quartz tuning fork 135 and micro-resonator tubes 120 for the photoacoustic detection.
[0029] A photoacoustic sensor for CO detection is illustrated in
[0030] The free-space laser beam can be coupled into the single mode fiber 115 by employing an aspheric lens 620 fixed on a multi-axis translation stage. The single mode fiber 115 can be connected with the fiber half-taper 510 that is placed on a stage 625. In one embodiment, the laser wavelength is 2.3 μm and the fiber-taper diameter is 2.4 μm leading to about 7% of the incident optical power leaking out of the fiber core. In another embodiment, a fiber-coupled laser is employed and such an optical coupling system is not required. The CO molecules surrounding the fiber taper 510 absorb the modulated optical energy of the evanescent field 130 that leads to an acoustic wave, which is amplified by the resonator tubes 120. The generated acoustic wave excites the fundamental piezoelectric mode of the quartz tuning fork 135, thereby generating a weak current that is further amplified by a transimpedance amplifier 635. The pre-amplified signal can subsequently be demodulated at the resonant frequency of the tuning fork to obtain its component using a lock-in amplifier 640. All the data acquisition and signal processing operations can be controlled (e.g., via a LabVIEW program) by a computing device 645, such as a laptop computer.
[0031] Referring to
[0032] Referring to
[0033] Advantageously, the evanescent-wave quartz-enhanced photoacoustic sensor of embodiments of the subject invention requires neither a focusing lens and visualization system for optical alignment, nor an optical window,
[0034] In one embodiment, the evanescent-wave quartz-enhanced photoacoustic sensor is fixed inside a compact gas cell equipped with a gas inlet and outlet.
[0035] In a specific embodiment, water vapor is added into the gas mixture as a relaxation promoter to enhance the vibration-translation relaxation, thereby enhancing the photoacoustic signal. To this end, the testing gas mixture, before being introduced into the gas cell, is passed through a permeation tube that is immersed inside a water circulating bath. Advantageously, a typical relative humidity of 46% maintained in the gas flow constantly enhances the photoacoustic signal by a factor of approximately 3.
[0036] All patents, patent applications, provisional applications, and publications referred to or cited herein (including those in the “References” section) are incorporated by reference in their entirety, including all figures and tables, to the extent they are not inconsistent with the explicit teachings of this specification.
[0037] It should be understood that the examples and embodiments described herein are for illustrative purposes only and that various modifications or changes in light thereof will be suggested to persons skilled in the art and are to be included within the spirit and purview of this application. In addition, any elements or limitations of any invention or embodiment thereof disclosed herein can be combined with any and/or all other elements or limitations (individually or in any combination) or any other invention or embodiment thereof disclosed herein, and all such combinations are contemplated with the scope of the invention without limitation thereto.
REFERENCES
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