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The effects of chain length, embedded polar groups, pressure, and pore shape on structure and retention in reversed-phase liquid chromatography: Molecular-level insights from Monte Carlo simulations

Research output: Contribution to journalArticlepeer-review

Abstract

Particle-based simulations using the configurational-bias and Gibbs ensemble Monte Carlo techniques are carried out to probe the effects of various chromatographic parameters on bonded-phase chain conformation, solvent penetration, and retention in reversed-phase liquid chromatography (RPLC). Specifically, we investigate the effects due to the length of the bonded-phase chains (C18, C8, and C1), the inclusion of embedded polar groups (amide and ether) near the base of the bonded-phase chains, the column pressure (1, 400, and 1000 atm), and the pore shape (planar slit pore versus cylindrical pore with a 60 Å diameter). These simulations utilize a bonded-phase coverage of 2.9μ mol/m2and a mobile phase containing methanol at a molfraction of 33% (about 50% by volume). The simulations show that chain length, embedded polar groups, and pore shape significantly alter structural and retentive properties of the model RPLC system, whereas the column pressure has a relatively small effect. The simulation results are extensively compared to retention measurements. A molecular view of the RPLC retention mechanism emerges that is more complex than can be inferred from thermodynamic measurements.

Original languageEnglish (US)
Pages (from-to)2320-2331
Number of pages12
JournalJournal of Chromatography A
Volume1216
Issue number12
DOIs
StatePublished - Mar 20 2009

Bibliographical note

Funding Information:
Financial support from the National Science Foundation (CHE-0718383), the Rohm and Haas Company, and a Frieda Martha Kunze Fellowship (J. L. R.) is gratefully acknowledged. Part of the computer resources were provided by the Minnesota Supercomputing Institute.

Keywords

  • Chain length
  • Embedded polar groups
  • Pore shape
  • Pressure
  • Retention mechanism
  • Reversed-phase liquid chromatography
  • Stationary-phase structure

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