State-of-the-art theory addresses single-electron excitations in condensed matter by linking density-functional theory (DFT) with many-body perturbation theory. In actual calculations it is common to employ the pseudopotential (PP) approach, where pseudo-wave-functions enter the calculation of the selfenergy, and the core-valence interaction is treated at the DFT level. In this Letter we present accurate all-electron calculations of the self-energy and systematically compare the results to those of PP calculations. The analysis for a range of different materials reveals that both above mentioned approximations are indeed problematic
One of the fundamental problems in condensed-matter physics and quan-tum chemistry is the theoretica...
We report a theoretical study on the role of shallow d states in the screened-exchange local density...
Theoretical calculations of core electron binding energies are required for the interpretation of ex...
State-of-the-art theory addresses single-electron excitations in condensed matter by linking density...
State-of-the-art theory addresses single-electron excitations in condensed matter by linking density...
A large number of today's ab initio calculations, in particular in solid-state physics, are based on...
We report a theoretical study on the role of shallow d states in the screened-exchange local density...
We report a theoretical study on the role of shallow d states in the screened-exchange local density...
By calculating an exchange-correlation potential from the self-energy operator, we show that interpr...
By calculating an exchange-correlation potential from the self-energy operator, we show that interpr...
We demonstrate how to identify which physical processes dominate the low-energy spectral functions o...
Despite the enormous success and popularity of density-functional theory, systematic verification an...
We show how the density-functional theory (DFT) exchange-correlation potential Vxc(r) of a semicondu...
We propose a new method for calculating total energies of systems of interacting electrons, which re...
Quantum Monte Carlo methods provide in principle a highly accurate treatment of the many-body proble...
One of the fundamental problems in condensed-matter physics and quan-tum chemistry is the theoretica...
We report a theoretical study on the role of shallow d states in the screened-exchange local density...
Theoretical calculations of core electron binding energies are required for the interpretation of ex...
State-of-the-art theory addresses single-electron excitations in condensed matter by linking density...
State-of-the-art theory addresses single-electron excitations in condensed matter by linking density...
A large number of today's ab initio calculations, in particular in solid-state physics, are based on...
We report a theoretical study on the role of shallow d states in the screened-exchange local density...
We report a theoretical study on the role of shallow d states in the screened-exchange local density...
By calculating an exchange-correlation potential from the self-energy operator, we show that interpr...
By calculating an exchange-correlation potential from the self-energy operator, we show that interpr...
We demonstrate how to identify which physical processes dominate the low-energy spectral functions o...
Despite the enormous success and popularity of density-functional theory, systematic verification an...
We show how the density-functional theory (DFT) exchange-correlation potential Vxc(r) of a semicondu...
We propose a new method for calculating total energies of systems of interacting electrons, which re...
Quantum Monte Carlo methods provide in principle a highly accurate treatment of the many-body proble...
One of the fundamental problems in condensed-matter physics and quan-tum chemistry is the theoretica...
We report a theoretical study on the role of shallow d states in the screened-exchange local density...
Theoretical calculations of core electron binding energies are required for the interpretation of ex...