4.6 Article

The rationale for the optimum efficiency of columns packed with new 1.9 μm fully porous Titan-C18 particles-A detailed investigation of the intra-particle diffusivity

期刊

JOURNAL OF CHROMATOGRAPHY A
卷 1355, 期 -, 页码 164-178

出版社

ELSEVIER SCIENCE BV
DOI: 10.1016/j.chroma.2014.05.076

关键词

Column efficiency; Titan-C-18 particles; Particle size distribution; Pore size distribution; Intra-particle diffusivity; Internal obstruction factor

资金

  1. University of Tennessee
  2. Oak Ridge National Laboratory
  3. Waters Technologies Corporation

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In a previous report, it was reported that columns packed with fully porous 1.9 mu m Titan-C-18 particles provided a minimum reduced plate height as small as 1.7 for the most retained compound (n-octanophenone) under RPLC conditions. These particles are characterized by a relatively narrow size distribution with a relative standard deviation (RSD) of only 10%. A column packed with classical 5 mu m Symmetry-C-18 particles, used as a reference RPLC column, generated a minimum reduced plate height of 2.1 for the same retained compound. This work demonstrates that this was due to an unusually low intra-particle diffusivity across these particles, which leads to a small longitudinal diffusion coefficient along the column. The demonstration is based on the combination of accurate measurements of the height equivalent to a theoretical plate (HETP), inverse size exclusion chromatography (ISEC), peak parking (PP), and minor disturbance method (MDM) experiments. The experimental results show that the reduced eddy dispersion HETP term (A = 0.8 for a reduced velocity of 5), the internal particle porosity (epsilon(p) = 0.35), and the enrichment of acetonitrile in the pore volume (75% acetonitrile in the bulk, 85% inside the mesoporous volume) are identical on both the Titan-C-18 and Symmetry-C-18 columns. The difference between the internal structures of these two brands of RPLC-C-18 fully porous particles lies in the values of the internal obstruction factor gamma(p), which is 0.42 for the Symmetry-C-18 but only 0.26 for the Titan-C-18 particles. This is in part related to the diffusion hindrance due to the small average pore size of the Titan-C-18 particles, around 59 angstrom versus 77 angstrom for Symmetry-C-18 particles. A simple model of constriction along diffusion paths having the shape of a truncated cone suggests that the width of the pore size distribution (RSD of 30% and 20% for Titan-C-18 and Symmetry-C-18 particles) is mostly responsible for the difference in their obstruction factors. (C) 2014 Elsevier B.V. All rights reserved.

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