Orbital-optimized DFT with extended Löwdin formalism qualitatively reproduces multireference absorption spectra for single-determinant states but shows discrepancies for multi-configurational ones, with no systematic gain from exact exchange or self-interaction correction.
A mountaineering strategy to excited states: Highly accurate reference energies and benchmarks
3 Pith papers cite this work. Polarity classification is still indexing.
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physics.chem-ph 3years
2026 3verdicts
UNVERDICTED 3representative citing papers
A reorganized Hartree-Fock framework imposes tunable orbital locality by pairing local degrees of freedom with local solution conditions, maintaining efficient SCF optimization and competitive reaction-energy accuracy.
Plane-wave OO-DFT reveals that single-augmented atomic basis sets produce inaccurate dipole moments for Rydberg states despite accurate excitation energies, with PBE0 giving the best agreement to higher-level references among tested functionals.
citing papers explorer
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Excited-state Properties Beyond the Excitation Energy from Orbital-Optimized Density Functional Calculations II: Absorption Spectra
Orbital-optimized DFT with extended Löwdin formalism qualitatively reproduces multireference absorption spectra for single-determinant states but shows discrepancies for multi-configurational ones, with no systematic gain from exact exchange or self-interaction correction.
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Approximating Hartree-Fock theory via an efficiently local reformulation
A reorganized Hartree-Fock framework imposes tunable orbital locality by pairing local degrees of freedom with local solution conditions, maintaining efficient SCF optimization and competitive reaction-energy accuracy.
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Excited-state Properties Beyond the Excitation Energy from Orbital-Optimized Density Functional Calculations I: Dipole Moments of Rydberg States
Plane-wave OO-DFT reveals that single-augmented atomic basis sets produce inaccurate dipole moments for Rydberg states despite accurate excitation energies, with PBE0 giving the best agreement to higher-level references among tested functionals.