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液体微连接表面采样探头流体动力学:同轴毛细尖端定位对样品操作影响的计算和实验分析。

Liquid microjunction surface sampling probe fluid dynamics: computational and experimental analysis of coaxial intercapillary positioning effects on sample manipulation.

机构信息

Organic and Biological Mass Spectrometry Group, Chemical Sciences Division, Oak Ridge National Laboratory, Oak Ridge, TN 37831, USA.

出版信息

J Am Soc Mass Spectrom. 2011 Jul;22(7):1157-66. doi: 10.1007/s13361-011-0145-5. Epub 2011 Apr 22.

DOI:10.1007/s13361-011-0145-5
PMID:21953098
Abstract

A coaxial geometry liquid microjunction surface sampling probe (LMJ-SSP) enables direct extraction of analytes from surfaces for subsequent analysis by techniques like mass spectrometry. Solution dynamics at the probe-to-sample surface interface in the LMJ-SSP has been suspected to influence sampling efficiency and dispersion but has not been rigorously investigated. The effect on flow dynamics and analyte transport to the mass spectrometer caused by coaxial retraction of the inner and outer capillaries from each other and the surface during sampling with a LMJ-SSP was investigated using computational fluid dynamics and experimentation. A transparent LMJ-SSP was constructed to provide the means for visual observation of the dynamics of the surface sampling process. Visual observation, computational fluid dynamics (CFD) analysis, and experimental results revealed that inner capillary axial retraction from the flush position relative to the outer capillary transitioned the probe from a continuous sampling and injection mode through an intermediate regime to sample plug formation mode caused by eddy currents at the sampling end of the probe. The potential for analytical implementation of these newly discovered probe operational modes is discussed.

摘要

一种同轴几何形状的液相微连接表面采样探头(LMJ-SSP)可实现从表面直接提取分析物,随后通过质谱等技术进行分析。LMJ-SSP 中探头与样品表面界面处的溶液动力学被怀疑会影响采样效率和分散,但尚未进行严格的研究。本研究使用计算流体动力学和实验研究了在使用 LMJ-SSP 进行采样时,内、外毛细管相对于彼此和表面的同轴缩回对流动动力学和分析物向质谱传输的影响。构建了一个透明的 LMJ-SSP,为观察表面采样过程的动力学提供了手段。通过观察、计算流体动力学(CFD)分析和实验结果发现,内毛细管相对于外毛细管从平齐位置的轴向缩回使探头从连续采样和注入模式通过中间状态过渡到探针采样端涡流引起的采样塞形成模式。讨论了这些新发现的探头操作模式在分析应用中的潜力。

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