LAUSR.org creates dashboard-style pages of related content for over 1.5 million academic articles. Sign Up to like articles & get recommendations!

All-Electron Gaussian-Based G0W0 for Valence and Core Excitation Energies of Periodic Systems.

Photo by cdc from unsplash

We describe an all-electron G0W0 implementation for periodic systems with k-point sampling implemented in a crystalline Gaussian basis. Our full-frequency G0W0 method relies on efficient Gaussian density fitting integrals and… Click to show full abstract

We describe an all-electron G0W0 implementation for periodic systems with k-point sampling implemented in a crystalline Gaussian basis. Our full-frequency G0W0 method relies on efficient Gaussian density fitting integrals and includes both analytic continuation and contour deformation schemes. Due to the compactness of Gaussian bases, no virtual state truncation is required as is seen in many plane-wave formulations. Finite size corrections are included by taking the q → 0 limit of the Coulomb divergence. Using our implementation, we study quasiparticle energies and band structures across a range of systems including molecules, semiconductors, rare gas solids, and metals. We find that the G0W0 band gaps of traditional semiconductors converge rapidly with respect to the basis size, even for the conventionally challenging case of ZnO. Using correlation-consistent bases of polarized triple-ζ quality, we find the mean absolute relative error of the extrapolated G0W0@PBE band gaps to be only 5.2% when compared to experimental values. For core excitation binding energies (CEBEs), we find that G0W0 predictions improve significantly over those from DFT if the G0W0 calculations are started from hybrid functionals with a high percentage of exact exchange.

Keywords: gaussian based; based g0w0; electron gaussian; core excitation; periodic systems

Journal Title: Journal of chemical theory and computation
Year Published: 2021

Link to full text (if available)


Share on Social Media:                               Sign Up to like & get
recommendations!

Related content

More Information              News              Social Media              Video              Recommended



                Click one of the above tabs to view related content.