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Updated: Feb 1, 2026

Accurate Determination of the Equilibrium Surface Tension Values with Area Perturbation Tests
Published on: August 30, 2019
A new constraint DFT technique for self-consistent determination of U values.
Tomoyuki Hamada1,2, Takahisa Ohno2
1Research and Development Group, Hitachi Ltd, Hatoyama, Saitama 350-0395, Japan.
A new computational technique determines the effective on-site-interaction parameter (Ueff) for strongly correlated electronic systems. This method, free from empirical parameters, accurately calculates material electronic structures using density functional theory (DFT)+U.
Area of Science:
- Computational Materials Science
- Condensed Matter Physics
- Quantum Chemistry
Background:
- Accurately describing strongly correlated electronic systems (SCESs) is crucial for understanding material properties.
- Existing methods often rely on empirical parameters, limiting predictive power.
- The effective on-site-interaction parameter (Ueff) is key to modeling electron correlation effects.
Purpose of the Study:
- To develop a novel, parameter-free computational technique for calculating Ueff within density functional theory (DFT).
- To integrate this technique with projector augmented wave (PAW) and pseudopotential (PP) methods.
- To enable self-consistent DFT+U calculations for SCESs.
Main Methods:
- Developed a constraint density functional theory (DFT) technique.
- Integrated the technique with projector augmented wave (PAW) and pseudopotential (PP) methods.
- Employed the DFT+U framework for self-consistent Ueff calculations.
Main Results:
- Successfully determined the Ueff for correlated electrons in neodymium sesquioxide (Nd2O3) and iron oxide (FeO).
- Demonstrated the effectiveness of the developed technique for SCESs.
- Achieved first-principles DFT+U PAW and PP calculations free from empirical parameters.
Conclusions:
- The new constraint DFT technique provides a physically meaningful Ueff, directly influencing electronic structure.
- This parameter-free approach enhances the accuracy and reliability of computational studies on SCESs.
- The method is applicable to various materials, including Nd2O3 and FeO, using established computational frameworks.
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