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GGA-Level Subsystem DFT Achieves Sub-kcal/mol Accuracy Intermolecular Interactions by Mimicking Nonlocal Functionals.
Xuecheng Shao1, Wenhui Mi1, Michele Pavanello1,2
1Department of Chemistry, Rutgers University, Newark, New Jersey 07102, United States.
We developed a new kinetic energy functional for subsystem DFT simulations. This functional accurately predicts interaction energies for weakly interacting systems, offering a computationally efficient alternative.
Area of Science:
- Computational Chemistry
- Quantum Chemistry
- Density Functional Theory (DFT)
Background:
- Nonlocal kinetic energy functionals are essential for subsystem DFT simulations, particularly for approximating nonadditive kinetic energy.
- These functionals should correctly reduce to Thomas-Fermi and von Weizsäcker functionals in specific density regimes.
- Existing nonlocal functionals can be computationally expensive, limiting their widespread application.
Purpose of the Study:
- To propose a new generalized gradient approximation (GGA) nonadditive kinetic energy functional.
- To develop a functional that retains the computational efficiency of semilocal functionals while mimicking nonlocal behavior.
- To ensure the functional accurately accounts for inter-subsystem density overlap.
Main Methods:
- Development of a novel GGA functional for nonadditive kinetic energy.
- The functional's dependence on inter-subsystem density overlap was a key design feature.
- Validation against Kohn-Sham DFT and coupled cluster benchmark calculations (CCSD(T)) for weakly interacting dimers.
Main Results:
- The proposed GGA functional successfully reproduces the desired behavior of nonlocal functionals.
- It demonstrates high accuracy in predicting interaction energies for dimers in the S22-5 and S66 test sets.
- The mean absolute deviation was significantly below 1 kcal/mol, indicating excellent performance.
Conclusions:
- The new GGA functional provides an accurate and computationally efficient method for subsystem DFT.
- It effectively captures the nonadditive kinetic energy contributions in weakly interacting systems.
- This development offers a practical advancement for electronic structure calculations in complex molecular systems.
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