Suppr超能文献

流动系统中环境化学分析的微型化:阀上实验室方法与芯片实验室微流控装置的比较。

Miniaturization of environmental chemical assays in flowing systems: the lab-on-a-valve approach vis-à-vis lab-on-a-chip microfluidic devices.

作者信息

Miró Manuel, Hansen Elo Harald

机构信息

Department of Chemistry, Faculty of Sciences, University of the Balearic Islands, Carretera de Valldemossa, km. 7.5, E-07122-Palma de Mallorca, Illes Balears, Spain.

出版信息

Anal Chim Acta. 2007 Sep 26;600(1-2):46-57. doi: 10.1016/j.aca.2007.02.035. Epub 2007 Feb 22.

Abstract

The analytical capabilities of the microminiaturized lab-on-a-valve (LOV) module integrated into a microsequential injection (muSI) fluidic system in terms of analytical chemical performance, microfluidic handling and on-line sample processing are compared to those of the micro total analysis systems (muTAS), also termed lab-on-a-chip (LOC). This paper illustrates, via selected representative examples, the potentials of the LOV scheme vis-à-vis LOC microdevices for environmental assays. By means of user-friendly programmable flow and the exploitation of the interplay between the thermodynamics and the kinetics of the chemical reactions at will, LOV allows accommodation of reactions which, at least at the present stage, are not feasible by application of microfluidic LOC systems. Thus, in LOV one may take full advantage of kinetic discriminations schemes, where even subtle differences in reactions are utilized for analytical purposes. Furthermore, it is also feasible to handle multi-step sequential reactions of divergent kinetics; to conduct multi-parametric determinations without manifold reconfiguration by utilization of the inherent open-architecture of the micromachined unit for implementation of peripheral modules and automated handling of a variety of reagents; and most importantly, it offers itself as a versatile front end to a plethora of detection schemes. Not the least, LOV is regarded as an emerging downscaled tool to overcome the dilemma of LOC microsystems to admit real-life samples. This is nurtured via its intrinsic flexibility for accommodation of sample pre-treatment schemes aimed at the on-line manipulation of complex samples. Thus, LOV is playing a prominent role in the environmental field, whenever the monitoring of trace level concentration of pollutants is pursued, because both matrix isolation and preconcentration of target analytes is most often imperative, or in fact necessary, prior to sample presentation to the detector.

摘要

将集成到微顺序注射(μSI)流体系统中的微型阀上实验室(LOV)模块在分析化学性能、微流体处理和在线样品处理方面的分析能力与微全分析系统(μTAS,也称为芯片实验室(LOC))的分析能力进行了比较。本文通过选定的代表性示例,阐述了LOV方案相对于用于环境分析的LOC微型设备的潜力。借助用户友好的可编程流动以及随意利用化学反应的热力学和动力学之间的相互作用,LOV能够容纳一些反应,这些反应至少在现阶段通过应用微流体LOC系统是不可行的。因此,在LOV中,可以充分利用动力学判别方案,其中即使是反应中的细微差异也被用于分析目的。此外,处理具有不同动力学的多步顺序反应、通过利用微机械单元的固有开放式架构来实现外围模块和自动处理各种试剂,从而在不重新配置流路的情况下进行多参数测定也是可行的;最重要的是,它本身是多种检测方案的通用前端。同样重要的是,LOV被视为一种新兴的缩小规模的工具,以克服LOC微系统难以接纳实际样品的困境。这得益于其内在的灵活性,能够容纳旨在对复杂样品进行在线处理的样品预处理方案。因此,每当追求对污染物痕量浓度的监测时,LOV在环境领域都发挥着重要作用,因为在将样品呈现给检测器之前,目标分析物的基质分离和预浓缩通常是必不可少的,或者实际上是必要的。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验