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Multi-modal, ultrasensitive detection of trace explosives using MEMS devices with quantum cascade lasers

机译:使用具有量子级联激光器的MEMS器件的MEMS器件多模态,超敏检测痕量炸药

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Multi-modal chemical sensors based on microelectromechanical systems (MEMS) have been developed with an electrical readout. Opto-calorimetric infrared (IR) spectroscopy, capable of obtaining molecular signatures of extremely small quantities of adsorbed explosive molecules, has been realized with a microthermometer/microheater device using a widely tunable quantum cascade laser. A microthermometer/microheater device responds to the heat generated by non-radiative decay process when the adsorbed explosive molecules are resonantly excited with IR light. Monitoring the variation in microthermometer signal as a function of illuminating IR wavelength corresponds to the conventional IR absorption spectrum of the adsorbed molecules. Moreover, the mass of the adsorbed molecules is determined by measuring the resonance frequency shift of the cantilever shape microthermometer for the quantitative opto-calorimetric IR spectroscopy. In addition, micro-differential thermal analysis, which can be used to differentiate exothermic or endothermic reaction of heated molecules, has been performed with the same device to provide additional orthogonal signal for trace explosive detection and sensor surface regeneration. In summary, we have designed, fabricated and tested microcantilever shape devices integrated with a microthermometer/microheater which can provide electrical responses used to acquire both opto-calorimetric IR spectra and microcalorimetric thermal responses. We have demonstrated the successful detection, differentiation, and quantification of trace amounts of explosive molecules and their mixtures (cyclotrimethylene trinitramine (RDX) and pentaerythritol tetranitrate (PETN)) using three orthogonal sensing signals which improve chemical selectivity.
机译:基于微机电系统(MEMS)的多模态化学传感器已经通过电读出开发。使用广泛调谐量子级联激光器,通过微过热计/微热器装置实现了能够获得极小少量吸附爆炸分子的分子签名的光度射频(IR)光谱。当吸附的爆炸分子共振激发时,微冷器/微热器装置响应非辐射衰变过程产生的热量。监测微液计信号的变化作为照明IR波长的函数对应于吸附分子的常规IR吸收光谱。此外,通过测量用于定量光热测定IR光谱的悬臂形微米计的谐振频率偏移来确定吸附分子的质量。此外,已经使用相同的装置进行微差分热分析,其可用于区分加热分子的放热或吸热反应,以提供用于跟踪爆炸检测和传感器表面再生的额外正交信号。总之,我们设计了与微镜/微热器集成的微电势钳形状装置,该装置可以提供用于获取光热谱和微电机热反应的电气响应。我们已经证明了使用三个正交感测信号的三种正交感测信号的痕量炸药分子及其混合物(环二甲基三硝胺(RDX)和季戊四醇)的成功检测,分化和定量的痕量炸药分子(RDX)和季戊四醇)。

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