Effect of the thermal environment on the efficiency of packed columns in supercritical fluid chromatography

J Chromatogr A. 2012 Nov 30:1266:149-57. doi: 10.1016/j.chroma.2012.10.003. Epub 2012 Oct 12.

Abstract

When a packed column is operated at temperatures and pressures near the critical point in supercritical fluid chromatography, the thermal environment in which it is placed has a significant impact on retention and efficiency. We measured the retention factors, plate heights, and related parameters for elution of a test mixture of alkylbenzenes with 5% methanol/95% carbon dioxide mobile phase on a 250 mm × 4.6 mm i.d. column packed with 5-micron Luna-C18 particles. Separations were performed at outlet pressures from 100 to 150 bar and a column oven temperature of 323K. For a bare column thermostated with convective air, significant efficiency losses were observed for outlet pressures equal to or less than 120 bar. These large efficiency losses are attributed to radial temperature gradients. Addition of foam insulation resulted in significant improvements in efficiency. Operating the column in still air using a commercially available column heater provided the best overall performance, with no measurable efficiency loss over the entire range of pressures studied. A reduced plate height of 1.88 was obtained at an optimum flow rate of 3.0 mL/min at 100 bar outlet pressure and with the temperature of the incoming mobile phase set approximately 2.3K above the temperature of the column oven. Retention time repeatability for all three thermal conditions was equal to or less than 0.5% RSD. These results demonstrate that it is possible to perform fast, efficient separations with excellent repeatability using SFC under near-critical conditions if the thermal environment is optimized to minimize the generation of radial temperature gradients.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Benzene Derivatives
  • Chromatography, Supercritical Fluid / instrumentation*
  • Chromatography, Supercritical Fluid / methods*
  • Models, Chemical
  • Pressure
  • Reproducibility of Results
  • Temperature

Substances

  • Benzene Derivatives