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Liquid volume measurement method for the picoliter to nanoliter volume range based on quartz crystal microbalance technology

机译:基于石英晶体微天平技术的皮升至纳升范围内液体体积测量方法

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In this article, a quantitative liquid volume measurement method for the sub-nanoliter range using a quartz crystal microbalance (QCM) is described and experimentally analyzed. The primary measurement device to determine the volume of small liquid droplets is a QCM sensor coated with a surface-attached hydrogel to improve the mechanical coupling of the liquid to the sensor surface. An experimental evaluation of measured volumes in the range of 3 nl to 15 nl in normal room conditions has been performed with three identical sensors prepared with a PDMAA-1%MaBP hydrogel coating with a thickness of 1.5μm ± 0.12μm. A linearity of R~2 more than 0.87, an average coefficient of variation (CV) within one experimental run of 5.7%, a mean absolute relative bias of 5.5%, and a sensor-to-sensor variation of 6.3% have been experimentally determined. The feasibility of this method has also been experimentally proven for the picoliter volume range down to 200 pl, with an average CV of 5.3% and a mean absolute relative bias of 6.5%. Furthermore, a stability evaluation consisting of 10 experimental series with approximately 150 measurements over the course of one week has been performed. This evaluation showed that the experimental setup, although exhibiting highly consistent performance within one measurement run, is not yet reproducible enough for long-term and repeated use because of undefined swelling and crack formation in the hydrogel layer. The low reproducibility implies a relatively high expanded uncertainty, with k = 2 according to the JCGM 'Evaluation of Measurement Data--Guide to the Expression of Uncertainty in Measurement' (GUM) for the total measurement method of approximately 3.82 nl when measuring a 10 nl liquid droplet. Nevertheless, the QCM method as described here contributes to significant progress beyond the state-of-the-art that might allow new opportunities for precise measurement of sub-nanoliter liquid volumes.
机译:在本文中,对使用石英晶体微量天平(QCM)的亚纳升范围的定量液体体积测量方法进行了描述和实验分析。确定小液滴体积的主要测量设备是QCM传感器,表面覆盖有水凝胶,可改善液体与传感器表面的机械耦合。使用三个相同的传感器(其厚度为1.5μm±0.12μm的PDMAA-1%MaBP水凝胶涂层),在正常室温下对3到15 nl范围内的测量体积进行了实验评估。已通过实验确定R〜2的线性度大于0.87,一次实验运行中的平均变异系数(CV)为5.7%,平均绝对相对偏差为5.5%,传感器之间的变异为6.3% 。该方法的可行性也已通过实验证明,其皮升的体积范围可小至200 pl,平均CV为5.3%,平均绝对相对偏差为6.5%。此外,在一个星期的过程中,进行了由10个实验系列组成的稳定性评估,并进行了约150次测量。该评估表明,尽管在一个测量运行中表现出高度一致的性能,但由于在水凝胶层中存在不确定的溶胀和裂纹形成,该实验装置对于长期和重复使用而言仍无法充分再现。低重复性意味着相对较高的扩展不确定性,根据JCGM``测量数据评估-测量不确定度表示指南''(GUM),k = 2,对于总测量方法,当测量10时约为3.82 nl nl液滴。尽管如此,此处描述的QCM方法仍为实现最新技术做出了重大贡献,这可能为精确测量亚纳升以下的液体量提供了新的机会。

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