Explicitly correlated coupled cluster method for accurate treatment of open-shell molecules with hundreds of atoms
Ashutosh Kumar, Frank Neese, Edward F. Valeev

TL;DR
This paper introduces a scalable, explicitly correlated coupled-cluster method for high-spin open-shell molecules, enabling accurate energy calculations for large systems with hundreds of atoms within days.
Contribution
The authors develop a near-linear scaling DLPNO-CCSD(T)$_{ ext{F12}}$ method for open-shell species, maintaining high accuracy and efficiency compared to previous closed-shell approaches.
Findings
Accurately computed energies for large open-shell molecules with over 550 atoms.
Achieved RMSD of 0.3 kcal/mol for a benchmark set of combustion species.
Performed high-level calculations on large systems within 3 days on a single multi-core computer.
Abstract
We present a near-linear scaling formulation of the explicitly-correlated coupled-cluster singles and doubles with perturbative triples method (CCSD(T)) for high-spin states of open-shell species. The approach is based on the conventional open-shell CCSD formalism [M. Saitow et al., J. Chem. Phys. 146, 164105 (2017)] utilizing the domain local pair-natural orbitals (DLPNO) framework. The use of spin-independent set of pair-natural orbitals ensures exact agreement with the closed-shell formalism reported previously, with only marginally impact on the cost (e.g. the open-shell formalism is only 1.5 times slower than the closed-shell counterpart for the n-alkane, with the measured size complexity of ). Evaluation of coupled-cluster energies near the complete-basis-set (CBS) limit for open-shell systems with…
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