Microelectromechanical'/> Enhanced Quality Factor Label-free Biosensing with Micro-Cantilevers Integrated into Microfluidic Systems
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Enhanced Quality Factor Label-free Biosensing with Micro-Cantilevers Integrated into Microfluidic Systems

机译:增强的质量因子与无悬臂器集成到微流体系统中的无悬臂无标签生物溶解

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src="http://pubs.acs.org/appl/literatum/publisher/achs/journals/content/ancham/2017/ancham.2017.89.issue-22/acs.analchem.7b01174/20171115/images/medium/ac-2017-011748_0007.gif">Microelectromechanical systems (MEMS) have enabled the development of a new generation of sensor platforms. Acoustic sensor operation in liquid, the native environment of biomolecules, causes, however, significant degradation of sensing performance due to viscous drag and relies on the availability of capture molecules to bind analytes of interest to the sensor surface. Here, we describe a strategy to interface MEMS sensors with microfluidic platforms through an aerosol spray. Our sensing platform comprises a microfluidic spray nozzle and a microcantilever array operated in dynamic mode within a closed loop oscillator. A solution containing the analyte is sprayed uniformly through picoliter droplets onto the microcantilever surface; the micrometer-scale drops evaporate rapidly and leave the solutes behind, adding to the mass of the cantilever. This sensing scheme results in a 50-fold increase in the quality factor compared to operation in liquid, yet allows the analytes to be introduced into the sensing system from a solution phase. It achieves a 370 femtogram limit of detection, and we demonstrate quantitative label-free analysis of inorganic salts and model proteins. These results demonstrate that the standard resolution limits of cantilever sensing in dynamic mode can be overcome with the integration of spray microfluidics with MEMS.
机译:src =“http://pubs.acs.org/appl/literatum/publisher/achs/journals/content/ancham/2017/canham.2017.89.issue-22/acs.analchem.7b01174/20171115/images/medium /ac-2017-011748_0007.gif“>晶体机电系统(MEMS)启用了新一代传感器平台的开发。液体中的声学传感器操作,生物分子的天然环境,然而,由于粘性阻力而导致的感测性能显着降低,并依赖于捕获分子的可用性结合感兴趣的分析物。在这里,我们描述了通过气溶胶喷雾用微流体平台接口MEMS传感器的策略。我们的传感平台包括微流体喷雾喷嘴和在闭环振荡器内以动态模式操作的微电路阵列。含有分析物的溶液通过PICOLITER液滴均匀地喷洒到微电机表面上;微米级滴迅速蒸发,并将溶质留在后面,加入悬臂的质量。与液体中的操作相比,该感测方案导致质量因子增加50倍,但允许将分析物从溶液阶段引入传感系统。它达到了370芯图的检测极限,我们证明了无机盐和模型蛋白的无机盐分析。这些结果表明,可以通过与MEMS的喷雾微流体的集成来克服动态模式中悬臂感测的标准分辨率限制。

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  • 来源
    《Analytical chemistry》 |2017年第22期|共8页
  • 作者单位

    Department of Chemistry University of Cambridge Lensfield Road Cambridge CB2 1EW United Kingdom;

    Department of Chemistry University of Cambridge Lensfield Road Cambridge CB2 1EW United Kingdom;

    Department of Chemistry University of Cambridge Lensfield Road Cambridge CB2 1EW United Kingdom;

    Department of Engineering University of Cambridge 17 Charles Babbage Road Cambridge CB3 0FS United Kingdom;

    Department of Chemistry University of Cambridge Lensfield Road Cambridge CB2 1EW United Kingdom;

    Department of Chemistry University of Cambridge Lensfield Road Cambridge CB2 1EW United Kingdom;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分析化学;
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