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A Microscale Biosensor for Methane Containing Methanotrophic Bacteria and an Internal Oxygen Reservoir

机译:甲烷的甲烷营养细菌和内部氧气储层的微型生物传感器。

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摘要

A microscale biosensor for continuous measurement of methane partial pressure based on a novel counterdiffusion principle is presented. Methane-oxidizing bacteria pieced in the microsensor utilize oxygen from an internal oxygen reservoir when methane from the exterior diffuses through the tip membrane. The transducer is an internal oxygen microsensor with its tip positioned between the oxygen reservoir and the sensor tip membrane. The external partial pressure of methane determines the rate of oxygen consumption within the sensor, which in mm is reflected by the signal from the transducer. Tip diameters were down to 20 μm, enabling us to study methane distribution on a microscale. The microscale construction also results in a low stirring sensitivity and a 95% response time down to 20 s. By tailoring the geometry, sensors can be made to exhibit a linear response in the full range of 0-1 atm partial pressure of methane or, alternatively, to exhibit a linear response only at lower concentrations, improving the sensitivity to below 0 1 kPa, corresponding to ~l μM in aqueous solution. Temperature, oxygen, and H↓(2)S interfere with the signal; no interferences were detected from He↓(2), NH↓(3), CO↓(2), or acetate.
机译:提出了一种基于新型反扩散原理的连续测量甲烷分压的微型生物传感器。当来自外部的甲烷通过尖端膜扩散时,微传感器中散布的甲烷氧化细菌会利用内部氧气池中的氧气。换能器是一个内部氧气微传感器,其尖端位于储氧器和传感器尖端膜之间。甲烷的外部分压决定了传感器内的氧气消耗速率,该速率以毫米为单位反映在传感器的信号中。尖端直径低至20μm,使我们能够在微尺度上研究甲烷的分布。微型结构还导致搅拌灵敏度低和低至20 s的95%响应时间。通过调整几何形状,可以使传感器在甲烷分压为0-1 atm的整个范围内显示线性响应,或者仅在较低浓度下显示线性响应,从而将灵敏度提高到0 1 kPa以下,相当于水溶液中约1μM。温度,氧气和H↓(2)S会干扰信号;没有检测到He↓(2),NH↓(3),CO↓(2)或醋酸盐的干扰。

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