Obtaining correct orbital ground states in electron systems using a nonspherical self-interaction corrected LDA+ method
arXiv:0907.2700 · doi:10.1103/PhysRevB.80.125127
Abstract
The electronic structure of lanthanide and actinide compounds is often characterized by orbital ordering of localized -electrons. Density-functional theory (DFT) studies of such systems using the currently available LDA+ method are plagued by significant orbital-dependent self-interaction, leading to erroneous orbital ground states. An alternative scheme that modifies the exchange, not Hartree, energy is proposed as a remedy. We show that our LDA+ approach reproduces the expected degeneracy of and states in free ions and the correct ground states in solid PrO. We expect our method to be useful in studying compounds of - and heavy- elements.
11 pages, 4 figures
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