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Towards ultrasound enhanced mid-IR spectroscopy for sensing bacteria in aqueous solutions

机译:迈向超声增强中红外光谱技术,以感测水溶液中的细菌

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We employ attenuated total reflection (ATR) mid-IR technology for sensing of bacteria present in aqueous solution. In ATR spectroscopy, the penetration depth of the evanescent field extends to approx. 1-2 micrometers into the aqueous solution depending on the refractive index of the employed materials (Si, ZnS, Ge) used as attenuated total reflection (ATR) element and the geometry of the optical set-up. Due to the flow profile in the microfluidic cell, an additional force is required to bring particles into the evanescent field for measurement. For that purpose, we employ standing ultrasound waves produced between a sound source vibrating at approx. 2 MHz and the ATR crystal acting as a reflector. This ultrasonic trap is integrated into the microfluidic channel. As aqueous solution is passing through that acoustofluidic cell, particles are concentrated in the nodal plane of the standing ultrasound wave, forming particle conglomerates. By selecting appropriate experimental conditions, it is then possible to press bacteria against the crystal surface for interaction with the evanescent wave (as well as to keep them away from the ATR element). Our current work aims at establishing a custom-made US-ATR-IR setup for signal enhancement of bacteria (e.g. E. coli, P. aeruginosa as well as Salmonella) in drinking water.
机译:我们采用衰减全反射(ATR)中红外技术来感应水溶液中存在的细菌。在ATR光谱学中,field逝场的穿透深度扩展到约。取决于所使用的用作衰减全反射(ATR)元素的材料(Si,ZnS,Ge)的折射率和光学装置的几何形状,可以在水溶液中加入1-2微米。由于微流体池中的流动分布,需要额外的力才能将颗粒带入渐逝场进行测量。为了这个目的,我们采用了在大约振动2倍的声源之间产生的驻波超声波。 2 MHz,ATR晶体充当反射器。该超声阱被集成到微流体通道中。当水溶液通过该声流细胞时,颗粒会聚集在驻波的节点平面中,从而形成颗粒聚集体。通过选择适当的实验条件,然后可以将细菌压向晶体表面以与van逝波相互作用(并使它们远离ATR元素)。我们当前的工作旨在建立定制的US-ATR-IR设置,以增强饮用水中细菌(例如大肠杆菌,铜绿假单胞菌和沙门氏菌)的信号。

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