Spatial non-locality of electronic correlations beyond GW approximation
1Condensed Matter Physics and Materials Science Department, Brookhaven National Laboratory, Upton, NY 11973, United States of America.
Journal of Physics. Condensed Matter : an Institute of Physics Journal
|September 6, 2021
Summary
Spatial non-locality effects are strong in electronic correlations beyond the GW approximation, impacting GW + DMFT calculations. The assumption of locality in these calculations is not as accurate as previously believed.
Area of Science:
- Condensed Matter Physics
- Quantum Chemistry
- Materials Science
Background:
- The GW approximation is a standard method for electronic structure calculations.
- Combining GW with dynamical mean-field theory (GW + DMFT) aims to improve accuracy by including strong correlation effects.
- A key assumption in practical GW + DMFT implementations is the spatial locality of diagrams beyond the GW level.
Purpose of the Study:
- To directly investigate the spatial locality of electronic correlations beyond the GW approximation.
- To assess the impact of this locality assumption on the GW + DMFT method.
- To evaluate the accuracy of vertex corrections in materials like NiO, α-Ce, and LiFeAs.
Main Methods:
- Development and application of the sc(GW + G3W2) approach.
- Performing calculations with and without the assumption of locality for higher-order diagrams (G3W2).
- Utilizing a fully momentum-dependent Green's function (G) and screened interaction (W) versus a single-site approximation.
Main Results:
- Strong spatial non-locality effects were observed in all three studied materials (NiO, α-Ce, LiFeAs).
- These non-locality effects were found to be decisive for accurate vertex corrections in NiO and LiFeAs.
- The study demonstrates that the locality assumption significantly affects the results of GW + DMFT calculations.
Conclusions:
- The assumption of spatial locality for diagrams beyond GW in GW + DMFT is questionable.
- These findings challenge the commonly accepted approximations in practical GW + DMFT implementations.
- Revisiting the locality assumption is crucial for improving the reliability of GW + DMFT for strongly correlated materials.
Related Concept Videos
Gauss's Law: Problem-Solving
2.3K
Gauss's law helps determine electric fields even though the law is not directly about electric fields but electric flux. In situations with certain symmetries (spherical, cylindrical, or planar) in the charge distribution, the electric field can be deduced based on the knowledge of the electric flux. In these systems, we can find a Gaussian surface S over which the electric field has a constant magnitude. Furthermore, suppose the electric field is parallel (or antiparallel) to the area...
2.3K
Molecular Orbital Theory II
21.8K
Molecular Orbital Energy Diagrams
21.8K
Electric Field of a Non Uniformly Charged Sphere
1.8K
Gauss's law states that the electric flux through any closed surface equals the net charge enclosed within the surface. This law is beneficial for determining the expressions for the electric field for a particular charge distribution if the electric flux is known.
Consider a non-uniformly charged sphere, for which the density of charge depends only on the distance from a point in space and not on the direction. Such a sphere has a spherically symmetrical charge distribution. Here, the electric...
Consider a non-uniformly charged sphere, for which the density of charge depends only on the distance from a point in space and not on the direction. Such a sphere has a spherically symmetrical charge distribution. Here, the electric...
1.8K
The de Broglie Wavelength
30.7K
In the macroscopic world, objects that are large enough to be seen by the naked eye follow the rules of classical physics. A billiard ball moving on a table will behave like a particle; it will continue traveling in a straight line unless it collides with another ball, or it is acted on by some other force, such as friction. The ball has a well-defined position and velocity or well-defined momentum, p = mv, which is defined by mass m and velocity v at any given moment. This is the typical...
30.7K
Gauss's Law in Dielectrics
4.7K
Consider a polar dielectric placed in an external field. In such a dielectric, opposite charges on adjacent dipoles neutralize each other, such that the net charge within the dielectric is zero. When a polar dielectric is inserted in between the capacitor plates, an electric field is generated due to the presence of net charges near the edge of the dielectric and the metal plates interface. Since the external electrical field merely aligns the dipoles, the dielectric as a whole is neutral. An...
4.7K
Molecular Orbital Theory I
36.0K
Overview of Molecular Orbital Theory
36.0K


