Koopmans-compliant functionals and their performance against reference molecular data
Giovanni Borghi, Andrea Ferretti, Ngoc Linh Nguyen, Ismaila Dabo,, Nicola Marzari

TL;DR
This paper introduces Koopmans-compliant functionals that improve the accuracy of molecular electronic property predictions by extending piecewise linearity constraints, offering a cost-effective alternative to many-body perturbation theories.
Contribution
It presents new formulations of Koopmans' compliance in density functional theory, demonstrating their effectiveness through extensive benchmarks on molecular data.
Findings
Accurate quasiparticle excitation estimates
Performance comparable or superior to G0W0 and GW methods
Structural and atomization energies maintained or improved
Abstract
Koopmans-compliant functionals emerge naturally from extending the constraint of piecewise linearity of the total energy as a function of the number of electrons to each fractional orbital occupation. When applied to approximate density-functional theory, these corrections give rise to orbital-density-dependent functionals and potentials. We show that the simplest implementations of Koopmans' compliance provide accurate estimates for the quasiparticle excitations and leave the total energy functional almost or exactly intact, i.e., they describe correctly electron removals or additions, but do not necessarily alter the electronic charge density distribution within the system. Additional functionals can then be constructed that modify the potential energy surface, including e.g. Perdew-Zunger corrections. These functionals become exactly one-electron self-interaction free and, as all…
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