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Quantum, classical, and hybrid QM/MM calculations in solution: General implementation of the ddCOSMO linear scaling strategy

  • Filippo Lipparini
  • , Giovanni Scalmani
  • , Louis Lagardère
  • , Benjamin Stamm
  • , Eric Cancès
  • , Yvon Maday
  • , Jean Philip Piquemal
  • , Michael J. Frisch
  • , Benedetta Mennucci
  • Sorbonne Université
  • Institut de Calcul et de la Simulation
  • Gaussian Inc.
  • CNRS
  • Institut Universitaire de France
  • Women and Infants Hospital of Rhode Island-Warren Alpert Medical School of Brown University
  • University of Pisa

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

Résumé

We present the general theory and implementation of the Conductor-like Screening Model according to the recently developed ddCOSMO paradigm. The various quantities needed to apply ddCOSMO at different levels of theory, including quantum mechanical descriptions, are discussed in detail, with a particular focus on how to compute the integrals needed to evaluate the ddCOSMO solvation energy and its derivatives. The overall computational cost of a ddCOSMO computation is then analyzed and decomposed in the various steps: the different relative weights of such contributions are then discussed for both ddCOSMO and the fastest available alternative discretization to the COSMO equations. Finally, the scaling of the cost of the various steps with respect to the size of the solute is analyzed and discussed, showing how ddCOSMO opens significantly new possibilities when cheap or hybrid molecular mechanics/quantum mechanics methods are used to describe the solute.

langue originaleAnglais
Numéro d'article184108
journalJournal of Chemical Physics
Volume141
Numéro de publication18
Les DOIs
étatPublié - 14 nov. 2014

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