Skip to main navigation Skip to search Skip to main content

Quantum chemistry common driver and databases (qcdb) and quantum chemistry engine (qce ngine): Automation and interoperability among computational chemistry programs

  • Daniel G.A. Smith
  • , Annabelle T. Lolinco
  • , Zachary L. Glick
  • , Jiyoung Lee
  • , Asem Alenaizan
  • , Taylor A. Barnes
  • , Carlos H. Borca
  • , Roberto Di Remigio
  • , David L. Dotson
  • , Sebastian Ehlert
  • , Alexander G. Heide
  • , Michael F. Herbst
  • , Jan Hermann
  • , Colton B. Hicks
  • , Joshua T. Horton
  • , Adrian G. Hurtado
  • , Peter Kraus
  • , Holger Kruse
  • , Sebastian J.R. Lee
  • , Jonathon P. Misiewicz
  • Levi N. Naden, Farhad Ramezanghorbani, Maximilian Scheurer, Jeffrey B. Schriber, Andrew C. Simmonett, Johannes Steinmetzer, Jeffrey R. Wagner, Logan Ward, Matthew Welborn, Doaa Altarawy, Jamshed Anwar, John D. Chodera, Andreas Dreuw, Heather J. Kulik, Fang Liu, Todd J. Martínez, Devin A. Matthews, Henry F. Schaefer, Jiří Šponer, Justin M. Turney, Lee Ping Wang, Nuwan De Silva, Rollin A. King, John F. Stanton, Mark S. Gordon, Theresa L. Windus, C. David Sherrill, Lori A. Burns*
*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

36 Scopus citations

Abstract

Community efforts in the computational molecular sciences (CMS) are evolving toward modular, open, and interoperable interfaces that work with existing community codes to provide more functionality and composability than could be achieved with a single program. The Quantum Chemistry Common Driver and Databases (QCDB) project provides such capability through an application programming interface (API) that facilitates interoperability across multiple quantum chemistry software packages. In tandem with the Molecular Sciences Software Institute and their Quantum Chemistry Archive ecosystem, the unique functionalities of several CMS programs are integrated, including CFOUR, GAMESS, NWChem, OpenMM, Psi4, Qcore, TeraChem, and Turbomole, to provide common computational functions, i.e., energy, gradient, and Hessian computations as well as molecular properties such as atomic charges and vibrational frequency analysis. Both standard users and power users benefit from adopting these APIs as they lower the language barrier of input styles and enable a standard layout of variables and data. These designs allow end-to-end interoperable programming of complex computations and provide best practices options by default.

Original languageEnglish
Article number204801
JournalThe Journal of Chemical Physics
Volume155
Issue number20
DOIs
StatePublished - 28 Nov 2021
Externally publishedYes

Bibliographical note

Publisher Copyright:
© 2021 Author(s).

ASJC Scopus subject areas

  • General Physics and Astronomy
  • Physical and Theoretical Chemistry

Fingerprint

Dive into the research topics of 'Quantum chemistry common driver and databases (qcdb) and quantum chemistry engine (qce ngine): Automation and interoperability among computational chemistry programs'. Together they form a unique fingerprint.

Cite this