LPEAD: Difference between revisions
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{{TAGDEF|LPEAD|.TRUE. {{!}} .FALSE|.FALSE.}} | {{TAGDEF|LPEAD|.TRUE. {{!}} .FALSE|.FALSE.}} | ||
Description: for {{TAG|LPEAD}}=.TRUE., the derivative of the cell-periodic part of the orbitals w.r.t. '''k''', |∇<sub>'''k'''</sub>u<sub>n'''k'''</sub>⟩, is calculated using finite differences. | Description: for {{TAG|LPEAD}}=.TRUE., the derivative of the cell-periodic part of the orbitals w.r.t. '''k''', |∇<sub>'''k'''</sub>u<sub>n'''k'''</sub>⟩, is calculated using finite differences ("perturbation expansion after discretization" (PEAD)<ref name="nunes:prb:01"/><ref name="souza:prl:02"/>). | ||
---- | ---- | ||
The derivative of the cell-periodic part of the orbitals w.r.t. '''k''', '''k''', |∇<sub>'''k'''</sub>u<sub>n'''k'''</sub>⟩, may be written as: | The derivative of the cell-periodic part of the orbitals w.r.t. '''k''', '''k''', |∇<sub>'''k'''</sub>u<sub>n'''k'''</sub>⟩, may be written as: | ||
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</math> | </math> | ||
Alternatively one may compute <math>\nabla_{\mathbf{k}} \tilde{u}_{n\mathbf{k}}</math> from finite differences: | Alternatively one may compute <math>\nabla_{\mathbf{k}} \tilde{u}_{n\mathbf{k}}</math> from finite differences ({{TAG|LPEAD}}=.TRUE.): | ||
:<math> | :<math> | ||
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---- | ---- | ||
*N.B. Please note that {{TAG|LPEAD}} = .TRUE. '''is not supported for metallic systems'''. | *N.B. Please note that {{TAG|LPEAD}} = .TRUE. '''is not supported for metallic systems'''. | ||
== Related tags and articles == | == Related tags and articles == | ||
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{{sc|LPEAD|Examples|Examples that use this tag}} | {{sc|LPEAD|Examples|Examples that use this tag}} | ||
== References == | |||
<references> | |||
<ref name="nunes:prb:01">[http://link.aps.org/doi/10.1103/PhysRevB.63.155107 R. W. Nunes and X. Gonze, Phys. Rev. B 63, 155107 (2001).]</ref> | |||
<ref name="souza:prl:02">[http://link.aps.org/doi/10.1103/PhysRevLett.89.117602 I. Souza, J. Íñiguez, and D. Vanderbilt, Phys. Rev. Lett. 89, 117602 (2002).]</ref> | |||
</references> | |||
---- | |||
---- | ---- | ||
[[Category:INCAR tag]][[Category:Linear response]][[Category:Dielectric properties]][[Category:Berry phases]] | [[Category:INCAR tag]][[Category:Linear response]][[Category:Dielectric properties]][[Category:Berry phases]] |
Latest revision as of 10:19, 22 January 2025
LPEAD = .TRUE. | .FALSE
Default: LPEAD = .FALSE.
Description: for LPEAD=.TRUE., the derivative of the cell-periodic part of the orbitals w.r.t. k, |∇kunk⟩, is calculated using finite differences ("perturbation expansion after discretization" (PEAD)[1][2]).
The derivative of the cell-periodic part of the orbitals w.r.t. k, k, |∇kunk⟩, may be written as:
where H(k) and S(k) are the Hamiltonian and overlap operator for the cell-periodic part of the orbitals, and the sum over n´ must include a sufficiently large number of unoccupied states.
It may also be found as the solution to the following linear Sternheimer equation (see LEPSILON):
Alternatively one may compute from finite differences (LPEAD=.TRUE.):
where m runs over the N occupied bands of the system, Δk=kj+1-kj, and
- .
As mentioned in the context of the self-consistent response to finite electric fields one may derive analoguous expressions for |∇kunk⟩ using higher-order finite difference approximations.
When LPEAD=.TRUE., VASP will compute |∇kunk⟩ using the aforementioned finite difference scheme. The order of the finite difference approximation can be specified by means of the IPEAD-tag (default: IPEAD=4).
These tags may be used in combination with LOPTICS=.TRUE. and LEPSILON=.TRUE..
- N.B. Please note that LPEAD = .TRUE. is not supported for metallic systems.
Related tags and articles
IPEAD, LEPSILON, LOPTICS, LCALCEPS, EFIELD_PEAD, Berry phases and finite electric fields