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State-Specific Density Functionals for Excited States via a Density-Driven Correlation Model
Tim Gould1, Stephen G Dale2, Leeor Kronik3
1Griffith University, Qld Micro- and Nanotechnology Centre, Nathan, Queensland 4111, Australia.
We developed a new strategy for excited state approximations using ensemble density functionals. This method models density-driven correlations, improving accuracy for challenging electronic excitations.
Area of Science:
- Quantum Chemistry
- Computational Physics
- Materials Science
Background:
- Standard density-functional approximations often fail to accurately describe excited states.
- Density-driven correlations (ddc's) are crucial for understanding excited states but are missed by ground-state methods.
Purpose of the Study:
- To develop a first-principles strategy for accurate excited state approximations.
- To incorporate density-driven correlations (ddc's) into ensemble density functionals.
- To address limitations of current density-functional theory (DFT) for excited states.
Main Methods:
- Utilizing ensemble density functionals to model excited states.
- Exploiting the low-density limit of electrons in excited states to model ddc's.
- Implementing a difference in self-consistent field (ΔSCF) approach for calculations.
Main Results:
- A proof-of-concept excited state approximation was developed.
- The new approximation resolves failures in describing double excitations, charge transfer excitations, and piecewise linearity.
- The method demonstrates impressive performance for modeling excited states.
Conclusions:
- The proposed strategy represents a significant advancement in modeling neutral and charged excitations.
- This approach offers a pathway toward unified and accurate excited-state calculations.
- The method effectively captures density-driven correlations essential for excited states.
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