Recovering the flat-plane condition in electronic structure theory at semi-local DFT cost
arXiv:1710.02378 · doi:10.1063/1.5008981
Abstract
The flat plane condition is the union of two exact constraints in electronic structure theory: i) energetic piecewise linearity with fractional electron removal or addition and ii) invariant energetics with change in electron spin in a half filled orbital. Semi-local density functional theory (DFT) fails to recover the flat plane, exhibiting convex fractional charge errors (FCE) and concave fractional spin errors (FSE) that are related to delocalization and static correlation errors. We previously showed that DFT+U eliminates FCE but now demonstrate that, like other widely employed corrections (i.e., Hartree Fock exchange), it worsens FSE. To find an alternative strategy, we examine the shape of semi-local DFT deviations from the exact flat plane, and we find this shape to be remarkably consistent across ions and molecules. We introduce the jmDFT approach, wherein corrections are constructed from few-parameter, low- order, functional forms that fit the shape of semi-local DFT errors. We select one such physically intuitive form and incorporate it self-consistently to correct semi-local DFT. We demonstrate on model systems that this jmDFT approach represents the first easy-to-implement, no-overhead approach to recovering the flat plane from semi-local DFT.
18 pages, 4 figures
References in corpus (9)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Localization and delocalization errors in density functional theory and implications for band-gap prediction
- Density functional theory in transition-metal chemistry: a self-consistent Hubbard U approach
- Fractional charge perspective on the band-gap in density-functional theory
- Fractional spins and static correlation error in density functional theory
- The discontinuous nature of the exchange-correlation functional -- critical for strongly correlated systems
- Where Does the Density Localize? Convergent Behavior for Global Hybrids, Range Separation, and DFT+U
- Deviations from piecewise linearity in the solid-state limit with approximate density functionals
- Inapplicability of exact constraints and a minimal two-parameter generalization to the DFT+ based correction of self-interaction error