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Microfluidic condensation nanoparticle counter using water as the condensing liquid for assessing individual exposure to airborne nanoparticles

机译:使用水作为冷凝液体的微流体缩合纳米粒子计数器,用于评估个体暴露于空气中的纳米粒子

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摘要

We present a compact and inexpensive detection system that can accurately measure the number concentration of nanoparticles (NPs; particles smaller than 100 nm) in real-time for assessing individual exposure to airborne NPs in various environments. Our system is based on the condensation nucleation light scattering technique and uses water as the condensing liquid, which solves the self-contamination issues that affect most portable NP detection systems. Our system comprises two units: a microfluidic condensation chip for growing NPs into water droplets and a miniature optical detector for singly counting grown droplets. To effectively minimize the size and cost of our system, droplets are grown on a single chip according to the semiconductor manufacturing process. To use water as the condensing liquid, a super-hydrophilic wick (i.e., Cu micropillar array coated with CuO nanowires) is monolithically integrated into the chip. Simulations were performed to verify the method of generating supersaturated water vapor. Quantitative experiments using NaCl and Ag NPs revealed that our system grew NPs larger than 9.3 nm into 2.25 mu m diameter water droplets and could count individual droplets over an extremely wide concentration range (0.021-10(5) N cm(-3)) with high accuracy. This outstanding performance allowed our system to resolve the daily pattern of the NP concentration along a metropolitan commuting street with strong agreement compared to the reference instrument. Because our system uses water, it can accurately monitor individual exposure to NPs in various kinds of environments, including multiuse facilities such as elementary schools and hospitals.
机译:我们提出了一种紧凑且廉价的检测系统,可以在实时测量纳米颗粒(NPS;小于100nm)的数量浓度,以评估各种环境中的个体暴露于空中NPS。我们的系统基于冷凝成核光散射技术,并使用水作为冷凝液体,这解决了影响最携带最便携式NP检测系统的自污染问题。我们的系统包括两个单元:用于将NPS生长到水滴中的微流体缩合芯片,用于单独计数生长液滴的微型光学检测器。为了有效地减少我们系统的尺寸和成本,根据半导体制造工艺在单个芯片上生长液滴。为了使用水作为冷凝液体,一种超亲水芯(即,涂有CuO纳米线的Cu micropillar阵列)是单独集成在芯片中的。进行模拟以验证产生超饱和水蒸气的方法。使用NaCl和Ag NP的定量实验显示,我们的系统将NPS大于9.3nm进入2.25μm直径水滴,可以在极宽的浓度范围内计算单个液滴(0.021-10(5)n厘米(-3))高精确度。与参考文书相比,这种出色的表现使我们的系统能够解决沿大都市通勤街的NP集中的日常模式。由于我们的系统使用水,因此可以准确地监控各种环境中的个人暴露,包括诸如小学和医院等多使用的设施。

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