Publication | Open Access
Communication: Practical intramolecular symmetry adapted perturbation theory via Hartree-Fock embedding
76
Citations
19
References
2015
Year
EngineeringMany-body Quantum PhysicLocal Occupied OrbitalsComputational ChemistryChemistrySymmetry (Physics)Simple MethodologyBiophysicsQuantum SciencePerturbation MethodPhysicsChemical BondPhysical ChemistryPractical Intramolecular SymmetryQuantum ChemistryAb-initio MethodInteraction Energy ContributionsNatural SciencesHydrogen BondMany-body Problem
We develop a simple methodology for the computation of symmetry-adapted perturbation theory (SAPT) interaction energy contributions for intramolecular noncovalent interactions. In this approach, the local occupied orbitals of the total Hartree-Fock (HF) wavefunction are used to partition the fully interacting system into three chemically identifiable units: the noncovalent fragments A and B and a covalent linker C. Once these units are identified, the noninteracting HF wavefunctions of the fragments A and B are separately optimized while embedded in the HF wavefunction of C, providing the dressed zeroth order wavefunctions for A and B in the presence of C. Standard two-body SAPT (particularly SAPT0) is then applied between the relaxed wavefunctions for A and B. This intramolecular SAPT procedure is found to be remarkably straightforward and efficient, as evidenced by example applications ranging from diols to hexaphenyl-ethane derivatives.
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