Restricted open-shell Hartree–Fock
Restricted open-shell Hartree–Fock (ROHF) is a variant of Hartree–Fock theory for open shell molecules. It uses doubly occupied molecular orbitals as far as possible and then singly occupied orbitals for the unpaired electrons. This is the simple picture for open shell molecules but it is difficult to implement. The foundations of the ROHF method were first formulated by Roothaan in a celebrated paper [1] and then extended by various authors, see e.g. [2] [3] [4] for in-depth discussions.
As with restricted Hartree–Fock theory for closed shell molecules, it leads to Roothaan equations written in the form of a generalized eigenvalue problem
Where F is the so-called Fock matrix, C is a matrix of coefficients, S is the overlap matrix of the basis functions, and is the (diagonal, by convention) matrix of orbital energies. Unlike restricted Hartree–Fock theory for closed shell molecules, the form of the Fock matrix is not unique. Different so-called canonicalisations can be used leading to different orbitals and different orbital energies, but the same total wavefunction, total energy, and other observables.
In contrast to unrestricted Hartree–Fock (UHF), the ROHF wave function is a satisfactory eigenfunction of the total spin operator - .
Developing post-Hartree–Fock methods based on a ROHF wave function is inherently more difficult than using a UHF wave function, due to the lack of a unique set of molecular orbitals[5]. However, different choices of reference orbitals have shown to provide similar results,[6] and thus many different post-Hartree–Fock methods have been implemented in a variety of electronic structure packages.
References
- ^ C.C.J. Roothaan, Self-consistent field theory for open shells of electronic systems , Rev. Mod. Phys. 32, 179-185 (2010)
- ^ R. Carbó, J.M. Riera, A general SCF theory, in Lecture notes in Quantum Chemistry, vol. 5, Springer, (1985)
- ^ R. McWeeny, Methods of Molecular Quantum Mechanics, 2nd edition, Academic Press, (1992)
- ^ B.N. Plakhutin, in Reviews of Modern Quantum Chemistry, vol. I, ed. by K.D. Sen, Word Scientific, (2002), pag. 16-42
- ^ Kurt R. Glaesemann and Michael S. Schmidt in J. Phys. Chem. A On the Ordering of Orbital Energies in High-Spin ROHF (2010) http://pubs.acs.org/doi/abs/10.1021/jp101758y
- ^ Jensen, F. (2007), Introduction to Computational Chemistry 2nd edition, Wiley