Chemical hardness, linear response, and pseudopotential transferability
- 15 October 1995
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review B
- Vol. 52 (16) , 11793-11804
- https://doi.org/10.1103/physrevb.52.11793
Abstract
We propose a systematic method of analyzing pseudopotential transferability based on linear-response properties of the free atom, including self-consistent chemical hardness and polarizability. Our calculation of hardness extends the approach of Teter not only by including self-consistency, but also by generalizing to nondiagonal hardness matrices, thereby allowing us to test for transferability to nonspherically symmetric environments. We apply the method to study the transferability of norm-conserving pseudopotentials for a variety of elements in the Periodic Table. We find that the self-consistent corrections are frequently significant, and should not be neglected. We prove that the partial-core correction improves the pseudopotential hardness of alkaline metals considerably. We propose a quantity to represent the average hardness error and calculate this quantity for many representative elements as a function of pseudopotential cutoff radii. We find that the atomic polarizabilities are usually well reproduced by the norm-conserving pseudopotentials. Our results provide useful guidelines for making optimal choices in the pseudopotential generation procedure.Keywords
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This publication has 27 references indexed in Scilit:
- Transferability of pseudopotentialsPhysical Review A, 1992
- Efficient pseudopotentials for plane-wave calculationsPhysical Review B, 1991
- Optimized pseudopotentialsPhysical Review B, 1990
- Pseudopotential methods in condensed matter applicationsComputer Physics Reports, 1989
- Optimally smooth norm-conserving pseudopotentialsPhysical Review B, 1985
- Pseudopotentials that work: From H to PuPhysical Review B, 1982
- Nonlinear ionic pseudopotentials in spin-density-functional calculationsPhysical Review B, 1982
- Norm-Conserving PseudopotentialsPhysical Review Letters, 1979
- Self-Consistent Equations Including Exchange and Correlation EffectsPhysical Review B, 1965
- Inhomogeneous Electron GasPhysical Review B, 1964