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Operator Formalism for Noncollinear Functionals in the Multicollinear Approach.
Xiaoyu Zhang1, Taoni Bao2,3
1College of Chemistry and Molecular Engineering, Peking University, Beijing 100871, The People's Republic of China.
This study introduces an operator formalism for the multicollinear approach, enabling accurate noncollinear density functional theory calculations. The new NCXC ensemble improves modeling of magnetism and electronic properties in materials.
Area of Science:
- Condensed matter physics
- Quantum chemistry
- Materials science
Background:
- Accurate modeling of spin-orbit coupling and noncollinear magnetism necessitates noncollinear density functionals within the generalized Kohn-Sham framework.
- Developing and implementing these noncollinear functionals presents significant challenges.
Purpose of the Study:
- To derive the operator formalism for the multicollinear approach, extending collinear functionals to noncollinear ones.
- To implement these novel equations in the NCXC noncollinear functional ensemble for enhanced DFT software compatibility.
- To validate the accuracy of the multicollinear approach in practical periodic systems.
Main Methods:
- Derivation of the operator formalism for the multicollinear approach.
- Implementation of the derived equations into the NCXC functional ensemble.
- Application and validation in periodic systems, including spin spirals, topological insulators, and semiconductors.
Main Results:
- Successful derivation and implementation of the operator formalism for the multicollinear approach.
- The NCXC ensemble demonstrates improved compatibility with DFT software.
- Validation confirms accuracy in modeling noncollinear magnetism, band structures, and band gaps.
Conclusions:
- The operator formalism of the multicollinear approach provides a robust method for noncollinear density functional theory.
- The NCXC ensemble facilitates accurate calculations of electronic and magnetic properties in diverse materials.
- This work advances the capability of DFT for studying complex magnetic and electronic phenomena.
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