Publication | Open Access
Linear scaling coupled cluster and perturbation theories in the atomic orbital basis
329
Citations
59
References
1999
Year
EngineeringLinear Scaling AlgorithmPerturbation TheoriesLinear ScalingComputational ChemistryChemistryElectronic StructureMolecular DynamicsExcitation AmplitudesMolecular SimulationMolecular PhysicsComputational BiochemistryCluster ScienceElectron DensityPhysicsAtomic PhysicsCoupled Cluster EquationsQuantum ChemistryAb-initio MethodNatural SciencesCondensed Matter PhysicsApplied PhysicsCluster ChemistryAtomic Orbital BasisMany-body Problem
We present a reformulation of the coupled cluster equations in the atomic orbital (AO) basis that leads to a linear scaling algorithm for large molecules. Neglecting excitation amplitudes in a screening process designed to achieve a target energy accuracy, we obtain an AO coupled cluster method which is competitive in terms of number of amplitudes with the traditional molecular orbital (MO) solution, even for small molecules. For large molecules, the decay properties of integrals and excitation amplitudes becomes evident and our AO method yields a linear scaling algorithm with respect to molecular size. We present benchmark calculations to demonstrate that our AO reformulation of the many-body electron correlation problem defeats the “exponential scaling wall” that has characterized high-level MO quantum chemistry calculations for many years.
| Year | Citations | |
|---|---|---|
Page 1
Page 1