Related Experiment Video
Updated: Feb 3, 2026

Cell Fractionation of U937 Cells by Isopycnic Density Gradient Purification
Published on: August 12, 2021
Delocalization Errors in Density Functional Theory Are Essentially Quadratic in Fractional Occupation Number
Diptarka Hait1, Martin Head-Gordon1,2
1Kenneth S. Pitzer Center for Theoretical Chemistry, Department of Chemistry , University of California , Berkeley , California 94720 , United States.
Abstract:
Approximate functionals used in practical density functional theory (DFT) deviate from the piecewise linear behavior of the exact functional for fractional charges. This deviation causes excess charge delocalization, which leads to incorrect densities, molecular properties, barrier heights, band gaps, and excitation energies. We present a simple delocalization function for characterizing this error and find it to be almost perfectly linear vs the fractional electron number for systems spanning in size from the H atom to the C12H14 polyene. This causes the delocalization energy error to be a quadratic polynomial in the fractional electron number, which permits us to assess the comparative performance of 47 popular and recent functionals through the curvature. The quadratic form further suggests that information about a single fractional charge is sufficient to eliminate the principal source of delocalization error. Generalizing traditional two-point information like ionization potentials or electron affinities to account for a third, fractional charge-based data point could therefore permit fitting/tuning of functionals with lower delocalization error.
Related Concept Videos
Compounds Essential to Human Function
Inorganic Compounds Essential to Human Functioning
Inorganic compounds essential to human functioning include water, salts, acids, and bases. These compounds are inorganic, i.e., they do not have a carbon-hydrogen bond. Water...
Molecular Orbital Theory II
Fundamental Attribution Error
Quadratic Equations
Quadratic Models
IR Absorption Frequency: Delocalization
In IR...

