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Spin-crossover complexes: Self-interaction correction vs density correction
Shiqi Ruan1, Koblar A Jackson2, Adrienn Ruzsinszky1
1Department of Physics, Temple University, Philadelphia, Pennsylvania 19122, USA.
Accurately calculating spin-crossover energies in transition metal complexes is challenging. Using self-interaction corrected densities improves the accuracy of these energy calculations for high-spin and low-spin states.
Area of Science:
- Computational Chemistry
- Quantum Chemistry
- Materials Science
Background:
- Transition metal complexes with 3d4-3d7 electron configurations exhibit high-spin (HS) and low-spin (LS) states.
- The spin-crossover energy, the difference between HS and LS states, is small and difficult to calculate accurately.
- Accurate calculation of spin-crossover energies is crucial for understanding and designing materials with tunable magnetic properties.
Purpose of the Study:
- To evaluate the accuracy of various electronic structure approximations for calculating spin-crossover energies.
- To investigate the impact of self-interaction correction on the accuracy of spin-crossover energy calculations.
- To identify methods that can reliably predict spin-crossover energies in iron complexes.
Main Methods:
- Calculations of spin-crossover energies for iron complexes using methods based on the random phase approximation (RPA) and Fermi-Löwdin self-interaction correction (FL-SIC).
- Comparison of self-consistent and post-self-consistent calculation results.
- Analysis of Hartree-Fock (HF) densities and their resemblance to Perdew-Zunger-type self-interaction corrected (PZ-SIC) densities.
Main Results:
- Evaluating exchange-correlation energy functionals on self-interaction-corrected densities mitigates density errors.
- This approach improves the accuracy of adiabatic energy differences between high-spin and low-spin states.
- The study highlights the importance of density accuracy for reliable spin-crossover energy predictions.
Conclusions:
- Self-interaction corrected densities offer a promising route to improve the accuracy of spin-crossover energy calculations.
- The findings provide guidance for selecting appropriate electronic structure methods for studying spin-crossover phenomena.
- Accurate theoretical predictions of spin-crossover energies are essential for advancing molecular magnetism and materials science.
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