We present a linear-scaling symmetry-adapted perturbation theory (SAPT) method that is based on an atomic orbital (AO) formulation of zeroth-order SAPT (SAPT0). The non-dispersive terms are realized with linear-scaling cost using both the continuous fast multipole method (CFMM) and the linear exchange (LinK) approach for integral contractions as well as our efficient Laplace-based coupled-perturbed self-consistent field method (DL-CPSCF) for evaluating response densities. The reformulation of the dispersion term is based on our linear-scaling AO Møller-Plesset second-order perturbation theory (AO-MP2) method, that uses our recently introduced QQR-type screening [S. A. Maurer, D. S. Lambrecht, J. Kussmann, and C. Ochsenfeld, J. Chem. Phys. 138, 014101 (2013)] for preselecting numerically significant energy contributions. Similar to scaled opposite-spin MP2, we neglect the exchange-dispersion term in SAPT and introduce a scaling factor for the dispersion term, which compensates for the error and at the same time accounts for basis set incompleteness effects and intramonomer correlation. We show in extensive benchmark calculations that the new scaled-dispersion (sd-)SAPT0 approach provides reliable results for small and large interacting systems where the results with a small 6-31G** basis are roughly comparable to supermolecular MP2 calculations in a triple-zeta basis. The performance of our method is demonstrated with timings on cellulose fragments, DNA systems, and cutouts of a protein-ligand complex with up to 1100 atoms on a single computer core.
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14 November 2013
Research Article|
November 11 2013
Linear-scaling symmetry-adapted perturbation theory with scaled dispersion Available to Purchase
Simon A. Maurer;
Simon A. Maurer
Chair of Theoretical Chemistry, Department of Chemistry,
University of Munich (LMU)
, Butenandtstr. 7, D-81377 Munich, Germany
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Matthias Beer;
Matthias Beer
Chair of Theoretical Chemistry, Department of Chemistry,
University of Munich (LMU)
, Butenandtstr. 7, D-81377 Munich, Germany
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Daniel S. Lambrecht;
Chair of Theoretical Chemistry, Department of Chemistry,
University of Munich (LMU)
, Butenandtstr. 7, D-81377 Munich, Germany
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Christian Ochsenfeld
Chair of Theoretical Chemistry, Department of Chemistry,
University of Munich (LMU)
, Butenandtstr. 7, D-81377 Munich, Germany
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Simon A. Maurer
Matthias Beer
Daniel S. Lambrecht
Christian Ochsenfeld
Chair of Theoretical Chemistry, Department of Chemistry,
University of Munich (LMU)
, Butenandtstr. 7, D-81377 Munich, Germany
a)
Present address: Department of Chemistry, University of Pittsburgh, Pittsburgh, Pennsylvania 15260, USA.
b)
Electronic mail: [email protected]
J. Chem. Phys. 139, 184104 (2013)
Article history
Received:
July 20 2013
Accepted:
October 15 2013
Citation
Simon A. Maurer, Matthias Beer, Daniel S. Lambrecht, Christian Ochsenfeld; Linear-scaling symmetry-adapted perturbation theory with scaled dispersion. J. Chem. Phys. 14 November 2013; 139 (18): 184104. https://doi.org/10.1063/1.4827297
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