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首页> 外文期刊>Microfluidics and nanofluidics >Characterization of a miniaturized liquid bridge for nL sample infusion: a comparative study of sample flush-out behavior using flow simulations and direct ESI-MS analysis
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Characterization of a miniaturized liquid bridge for nL sample infusion: a comparative study of sample flush-out behavior using flow simulations and direct ESI-MS analysis

机译:用于nL样品注入的微型液桥的表征:使用流动模拟和直接ESI-MS分析对样品冲洗行为的比较研究

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摘要

In this work we shed light on the microfluidics of a miniaturized liquid bridge that forms the central part of a so-called "capillary gap sampler," a novel device for rapid and seamless injection of nanoliter sample volumes into an electrospray ionization mass spectrometer (ESI-MS). Parameters relevant for sample flush-out at the liquid bridge and in the spray capillary were identified by systematic variation of the capillary dimensions, the linear buffer flow rate (2.1-34 mm/s) and molecular weight of the analytes (0.5-30 kDa). We found that a reduction in capillary wall thickness by a factor of 1.6 significantly influences analyte peak shapes, leads to an inversion of the relationship between peak width and analyte molecular weight, and allows a fivefold decrease in peak width for large molecules down to 5 s. The results could be verified and explained by simulations, in which the presence of diffusion-controlled "dead zones" at the liquid bridge and dispersion in the spray tip that depend on analyte molecular weight were identified as key factors relevant for the sample flush-out process. The merging of simulations and experimental data gives useful hints toward the re-design of a spray tip as built-in ESI-MS interface for an optimized gap sampler performance.
机译:在这项工作中,我们阐明了微型液体桥的微流控技术,该桥形成了所谓的“毛细管间隙进样器”的中心部分,这是一种将毫微升样品量快速无缝地注入电喷雾电离质谱仪(ESI)的新型设备-多发性硬化症)。通过系统地改变毛细管尺寸,线性缓冲液流速(2.1-34 mm / s)和分析物的分子量(0.5-30 kDa),确定与液桥和喷雾毛细管中的样品冲洗相关的参数。 )。我们发现,将毛细管壁厚减少1.6倍会显着影响分析物的峰形,导致峰宽与分析物分子量之间的关系倒置,并且对于低至5 s的大分子,峰宽减少五倍。结果可以通过模拟进行验证和解释,其中,取决于分析物分子量的液体桥处弥散控制的“死区”的存在和喷嘴中的分散体(取决于分析物分子量)被确定为与样品冲洗相关的关键因素处理。模拟和实验数据的合并为重新设计喷头提供了有用的提示,该喷头是内置的ESI-MS接口,可优化间隙采样器的性能。

著录项

  • 来源
    《Microfluidics and nanofluidics》 |2016年第4期|62.1-62.11|共11页
  • 作者单位

    ETH, Dept Chem & Appl Biosci, CH-8093 Zurich, Switzerland|BASF SE, Competence Ctr Analyt, Carl Bosch Str 38, D-67056 Ludwigshafen, Germany;

    ETH, Inst Biomed Engn, Lab Biosensors & Bioelect, CH-8092 Zurich, Switzerland|Cytosurge AG, CH-8152 Glattbrugg, Switzerland;

    F Hoffmann La Roche & Cie AG, PRED, Pharma Res & Early Dev, Discovery Technol, Grenzacherstr 124, CH-4070 Basel, Switzerland;

    F Hoffmann La Roche & Cie AG, PRED, Pharma Res & Early Dev, Discovery Technol, Grenzacherstr 124, CH-4070 Basel, Switzerland;

    ETH, Dept Chem & Appl Biosci, CH-8093 Zurich, Switzerland;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Capillary gap sampler; Flow injection analysis; Molecule dispersion; Peak profiles;

    机译:毛细管间隙采样器;流动注射分析;分子分散;峰形;

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