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Automation of static and dynamic non-dispersive liquid phase microextraction. Part 1: Approaches based on extractant drop-, plug-, film- and microflow-formation

期刊

ANALYTICA CHIMICA ACTA
卷 906, 期 -, 页码 22-40

出版社

ELSEVIER
DOI: 10.1016/j.aca.2015.11.038

关键词

Automation; Miniaturisation; Liquid phase microextraction; Single drop microextraction; Solvent plug microextraction; In-syringe liquid phase microextraction; Wetting film microextraction; Microfluidic-based liquid phase microextraction; Static liquid phase microextraction; Dynamic liquid phase microextraction

资金

  1. Charles University Research Centre [UNCE 204026/2012]
  2. Czech Science Foundation [P206/15/10781S]

向作者/读者索取更多资源

Simplicity, effectiveness, swiftness, and environmental friendliness - these are the typical requirements for the state of the art development of green analytical techniques. Liquid phase microextraction (LPME) stands for a family of elegant sample pretreatment and analyte preconcentration techniques preserving these principles in numerous applications. By using only fractions of solvent and sample compared to classical liquideliquid extraction, the extraction kinetics, the preconcentration factor, and the cost efficiency can be increased. Moreover, significant improvements can be made by automation, which is still a hot topic in analytical chemistry. This review surveys comprehensively and in two parts the developments of automation of non-dispersive LPME methodologies performed in static and dynamic modes. Their advantages and limitations and the reported analytical performances are discussed and put into perspective with the corresponding manual procedures. The automation strategies, techniques, and their operation advantages as well as their potentials are further described and discussed. In this first part, an introduction to LPME and their static and dynamic operation modes as well as their automation methodologies is given. The LPME techniques are classified according to the different approaches of protection of the extraction solvent using either a tip-like (needle/tube/rod) support (drop-based approaches), a wall support (film-based approaches), or microfluidic devices. In the second part, the LPME techniques based on porous supports for the extraction solvent such as membranes and porous media are overviewed. An outlook on future demands and perspectives in this promising area of analytical chemistry is finally given. (C) 2015 Elsevier B.V. All rights reserved.

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