Fast electronic structure methods for strongly correlated molecular systems

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Abstract

A short review is given of newly developed fast electronic structure methods that are designed to treat molecular systems with strong electron correlations, such as diradicaloid molecules, for which standard electronic structure methods such as density functional theory are inadequate. These new local correlation methods are based on coupled cluster theory within a perfect pairing active space, containing either a linear or quadratic number of pair correlation amplitudes, to yield the perfect pairing (PP) and imperfect pairing (IP) models. This reduces the scaling of the coupled cluster iterations to no worse than cubic, relative to the sixth power dependence of the usual (untruncated) coupled cluster doubles model. A second order perturbation correction, PP(2), to treat the neglected (weaker) correlations is formulated for the PP model. To ensure minimal prefactors, in addition to favorable size-scaling, highly efficient implementations of PP, IP and PP(2) have been completed, using auxiliary basis expansions. This yields speedups of almost an order of magnitude over the best alternatives using 4-center 2-electron integrals. A short discussion of the scope of accessible chemical applications is given. © 2005 IOP Publishing Ltd.

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APA

Head-Gordon, M., Beran, G. J. O., Sodt, A., & Jung, Y. (2005). Fast electronic structure methods for strongly correlated molecular systems. In Journal of Physics: Conference Series (Vol. 16, pp. 233–242). Institute of Physics Publishing. https://doi.org/10.1088/1742-6596/16/1/031

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