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Area of Science:

  • Computational Chemistry
  • Quantum Chemistry
  • Theoretical Chemistry

Background:

  • Conventional orbital-optimized coupled-cluster doubles (OCCD) methods face computational limitations for large systems due to expensive integral transformations.
  • Density-fitting (DF) and Cholesky decomposition (CD) approaches offer potential for reducing the computational burden of coupled-cluster methods.

Purpose of the Study:

  • To present efficient implementations of the density-fitting orbital-optimized coupled-cluster doubles (DF-OCCD) method and its analytic energy gradients.
  • To compare the computational cost and performance of DF-OCCD with conventional OCCD and other related methods.

Main Methods:

  • Implementation of DF-OCCD and its analytic gradients.
  • Implementation of a Cholesky-decomposed variant (CD-OCCD) for energy computations.
  • Comparison of computational costs using the Q-CHEM and PSI4 packages for various molecular systems and basis sets.

Main Results:

  • DF-OCCD demonstrates dramatically lower computational costs compared to conventional OCCD, with significant reductions in computational time (e.g., eightfold for C6H14).
  • DF-OCCD shows substantial improvements over DF-CCD for open-shell geometries, interaction energies, and hydrogen transfer reactions.
  • The method provides accurate harmonic vibrational frequencies, especially in symmetry-breaking scenarios, and offers advantages over CCSD in several aspects.

Conclusions:

  • DF-OCCD provides a computationally efficient and accurate approach for electronic structure calculations.
  • The method's advantages, including no need for orbital relaxation in gradients and compatibility with active spaces, make it highly attractive for various chemical applications.
  • DF-OCCD and its variants offer superior performance and accuracy, particularly for challenging problems like symmetry breaking and near-degeneracy regions.