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PMID: 15354565 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

A computational study of the porosity effects in silica monolithic columns.

Journal of separation science ·Vol. 27 ·No. 10-11 ·2004-07-00 ·页码 887-96

Gzil P, Vervoort N, Baron GV, Desmet G

Abstract

We report on a theoretical study of the influence of the through-pore porosity on the main chromatographic performance parameters (reduced theoretical plate height, flow resistance, and separation impedance) of silica monoliths. To investigate this problem devoid of any structural uncertainties, computer-generated structural mimics of the pore geometry of silica monolithic columns have been studied. The band broadening in these synthetic monoliths was determined using a commercial Computational Fluid Dynamics (CFD) software package. Three widely differing external porosities (epsilon = 0.38, epsilon = 0.60, and epsilon = 0.86) are considered and are compared on the basis of an identical intra-skeleton diffusivity (Ds = 5 x 10(-10)m2/s), internal porosity (epsilon(int) = 0.5), and for the same phase retention factor (k' = 1.25). Since the data are obtained for perfectly ordered structures, the calculated plate heights and separation impedances constitute the ultimate performance ever to be expected from a monolithic column. It is found that, if silica monoliths could be made perfectly homogeneous, domain size-based reduced plate heights as small as h(min) approximately 0.8 (roughly independent of the porosity) and separation impedances as small as Emin approximately 130 (epsilon = 0.60) and Emin approximately 40 (epsilon = 0.86) should be achievable with pure water as the working fluid. The data also show that, although the domain size is a much better reduction basis than the skeleton size, the former is still not capable of bringing the van Deemter curves of different porosity columns into perfect agreement in the C term dominated velocity range. It is found that, in this range, large porosity monoliths can be expected to yield smaller domain size-based reduced plate heights than small porosity monoliths.

MeSH 主题词
Chromatography/methods Diffusion Kinetics Models, Molecular Models, Theoretical Porosity Silicon Dioxide/chemistry Software
化学物质
Silicon Dioxide
作者与单位
共 4 位作者,点击展开单位 / ORCID
Gzil Piotr
Vrije Universiteit Brussel, Department of Chemical Engineering (CHIS-TW), Pleinlaan 2, B-1050 Brussels, Belgium. [email protected]
Vervoort Nico
Baron Gino V
Desmet Gert
Article Info
Journal
Journal of separation science
Abbr.
J Sep Sci
ISSN
1615-9306
Corresponding email
Published
2004-07-00
页码
887-96
Language
English
Country/Region
Germany
NLM ID
101088554
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