LOBSTER: A tool to extract chemical bonding from plane-wave based DFT

The computer program LOBSTER (Local Orbital Basis Suite Towards Electronic‐Structure Reconstruction) enables chemical‐bonding analysis based on periodic plane‐wave (PAW) density‐functional theory (DFT) output and is applicable to a wide range of first‐principles simulations in solid‐state and materi...

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Veröffentlicht in:Journal of computational chemistry 2016-04, Vol.37 (11), p.1030-1035
Hauptverfasser: Maintz, Stefan, Deringer, Volker L., Tchougréeff, Andrei L., Dronskowski, Richard
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Sprache:eng
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Zusammenfassung:The computer program LOBSTER (Local Orbital Basis Suite Towards Electronic‐Structure Reconstruction) enables chemical‐bonding analysis based on periodic plane‐wave (PAW) density‐functional theory (DFT) output and is applicable to a wide range of first‐principles simulations in solid‐state and materials chemistry. LOBSTER incorporates analytic projection routines described previously in this very journal [J. Comput. Chem. 2013, 34, 2557] and offers improved functionality. It calculates, among others, atom‐projected densities of states (pDOS), projected crystal orbital Hamilton population (pCOHP) curves, and the recently introduced bond‐weighted distribution function (BWDF). The software is offered free‐of‐charge for non‐commercial research. © 2016 The Authors. Journal of Computational Chemistry Published by Wiley Periodicals, Inc. The computer program LOBSTER enables chemical‐bonding analysis based on periodic plane‐wave DFT output, and is applicable to a wide range of first‐principles simulations in solid‐state and materials chemistry. LOBSTER incorporates analytic projection routines and offers improved functionality such as to calculate, among others, atom‐projected densities of states, projected crystal orbital Hamilton population (COHP) curves, and the recently introduced bond‐weighted distribution function (BWDF).
ISSN:0192-8651
1096-987X
DOI:10.1002/jcc.24300