Solvent viscosity mismatch between the solute plug and the mobile phase : considerations in the applications of two-dimensional HPLC

R. Andrew Shalliker, Georges Guiochon

    Research output: Contribution to journalArticlepeer-review

    20 Citations (Scopus)

    Abstract

    Understanding the nature of viscosity contrast induced flow instabilities is an important aspect in the design of two-dimensional HPLC separations. When the viscosity contrast between the sample plug and the mobile phase is sufficiently large, the phenomenon known as viscous fingering can be induced. Viscous fingering is a flow instability phenomenon that occurs at the interface between two fluids with different viscosities. In liquid chromatography, viscous fingering results in the solute band undergoing a change in form as it enters into the chromatography column. Moreover, even in the absence of viscous fingering, band shapes change shape at low viscosity contrasts. These changes can result in a noticeable change in separation performance, with the result depending on whether the solvent pushing the solute plug has a higher or lower viscosity than the solute plug. These viscosity induced changes become more important as the solute injection volume increases and hence understanding the process becomes critical in the implementation of multidimensional HPLC techniques, since in these techniques the sample injection plug into the second dimension is an order of magnitude greater than in one-dimensional HPLC. This review article assesses the current understanding of the viscosity contrast induced processes as they relate to liquid chromatographic separation behaviour.
    Original languageEnglish
    Pages (from-to)222-229
    Number of pages8
    JournalThe Analyst
    Volume135
    Issue number2
    DOIs
    Publication statusPublished - 2010

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