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Self-Regulated, Droplet-Based Sample Chopper for Microfluidic Absorbance Detection

机译:自调节,基于液滴的样品斩波器,用于微流控吸光度检测

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摘要

Akin to optical beam chopping, we demonstrate that formation and routing of aqueous droplets in oil can chop a fluidic sample to permit phase sensitive detection. This hand-operated microfluidic sample chopper ((mu)Chopper) greatly reduces the detection limit of molecular absorbance in a 27 (mu)m optical path. With direct dependence on path length, absorbance is fundamentally incompatible with microfluidics. While other microfluidic absorbance approaches use complex additions to fabrication, such as fiber coupling and increased optical paths, this self-regulated (mu)Chopper uses opposing droplet generators to passively alternate sample and reference droplets at approx10 Hz each. Each droplet's identity is automatically locked-in to its generator, allowing downstream lock-in analysis to nearly eliminate large signal drift or 1/f noise. With a lock-in time constant of 1.9 s and total interrogated volume of 59 nL (122 droplets), a detection limit of 3.0 X 10~(-4) absorbance units or 500 nM bromophenol blue (BPB) (29 fmol) was achieved using only an optical microscope and a standard, single-depth (27 (mu)m) microfluidic device. The system was further applied to nanoliter pH sensing and validated with a spectrophotometer. The (mu)Chopper represents a fluidic analog to an optical beam chopper, and the self-regulated sample/reference droplet alternation promotes ease of use.
机译:类似于光束斩波,我们证明了油中水滴的形成和路由可以斩波流体样本,从而可以进行相敏检测。这种手动操作的微流体样品斩波器(μChopper)大大降低了27μm光路中分子吸收的检测极限。直接依赖于路径长度,吸光度从根本上与微流体不相容。尽管其他微流体吸收方法在制造过程中使用了复杂的方法,例如光纤耦合和增加了光程,但这种自调节μChopper使用相对的液滴发生器以每个大约10 Hz的频率被动地交替采样和参考液滴。每个墨滴的身份自动锁定到其生成器,从而允许下游锁定分析几乎消除了大信号漂移或1 / f噪声。锁定时间常数为1.9 s,总检测体积为59 nL(122个液滴),检测极限为3.0 X 10〜(-4)吸光度单位或500 nM溴酚蓝(BPB)(29 fmol)仅使用光学显微镜和标准的单深度(27μm)微流控设备。该系统进一步应用于纳升pH传感,并通过分光光度计进行了验证。 μChopper代表光束斩波器的流体类似物,并且自调节的样品/参考液滴的交替促进了易用性。

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