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dc.contributor.authorRomero, Aldo H.es_ES
dc.contributor.authorAllan, Douglas C.es_ES
dc.contributor.authorAmadon, Bernardes_ES
dc.contributor.authorAntonius, Gabrieles_ES
dc.contributor.authorApplencourt, Thomases_ES
dc.contributor.authorBaguet, Lucases_ES
dc.contributor.authorBieder, Jordanes_ES
dc.contributor.authorBottin, Françoises_ES
dc.contributor.authorBouchet, Johannes_ES
dc.contributor.authorBousquet, Erices_ES
dc.contributor.authorBruneval, Fabienes_ES
dc.contributor.authorBrunin, Guillaumees_ES
dc.contributor.authorCaliste, Damienes_ES
dc.contributor.authorCôté, Micheles_ES
dc.contributor.authorDenier, Juleses_ES
dc.contributor.authorDreyer, Cyrus E.es_ES
dc.contributor.authorGhosez, Philippees_ES
dc.contributor.authorGiantomassi, Matteoes_ES
dc.contributor.authorGillet, Yannickes_ES
dc.contributor.authorGingras, Olivieres_ES
dc.contributor.authorHamann, Donald R.es_ES
dc.contributor.authorHautier, Geoffroyes_ES
dc.contributor.authorJollet, Françoises_ES
dc.contributor.authorJomard, Géraldes_ES
dc.contributor.authorMartin, Alexandrees_ES
dc.contributor.authorMiranda, Henrique P. C.es_ES
dc.contributor.authorNaccarato, Francescoes_ES
dc.contributor.authorPetretto, Guidoes_ES
dc.contributor.authorPike, Nicholas A.es_ES
dc.contributor.authorPlanes, Valentines_ES
dc.contributor.authorProkhorenko, Sergeies_ES
dc.contributor.authorRangel, Tonatiuhes_ES
dc.contributor.authorRicci, Fabioes_ES
dc.contributor.authorRignanese, Gian-Marcoes_ES
dc.contributor.authorRoyo Valls, Miqueles_ES
dc.contributor.authorStengel, Massimilianoes_ES
dc.contributor.authorTorrent, Marces_ES
dc.contributor.authorSetten, Michiel J. vanes_ES
dc.contributor.authorTroeye, Benoit Vanes_ES
dc.contributor.authorVerstraete, Matthieu J.es_ES
dc.contributor.authorWiktor, Juliaes_ES
dc.contributor.authorZwanziger, Josef W.es_ES
dc.contributor.authorGonze, Xavieres_ES
dc.date.accessioned2020-06-16T10:46:59Z-
dc.date.available2020-06-16T10:46:59Z-
dc.date.issued2020-03-31-
dc.identifier.citationJournal of Chemical Physics 152(12): 124102 (2020)es_ES
dc.identifier.issn0021-9606-
dc.identifier.urihttp://hdl.handle.net/10261/214528-
dc.descriptionPaper published as part of the special topic on Electronic Structure Softwarees_ES
dc.description.abstractABINIT is probably the first electronic-structure package to have been released under an open-source license about 20 years ago. It implements density functional theory, density-functional perturbation theory (DFPT), many-body perturbation theory (GW approximation and Bethe–Salpeter equation), and more specific or advanced formalisms, such as dynamical mean-field theory (DMFT) and the “temperaturedependent effective potential” approach for anharmonic effects. Relying on planewaves for the representation of wavefunctions, density, and other space-dependent quantities, with pseudopotentials or projector-augmented waves (PAWs), it is well suited for the study of periodic materials, although nanostructures and molecules can be treated with the supercell technique. The present article starts with a brief description of the project, a summary of the theories upon which ABINIT relies, and a list of the associated capabilities. It then focuses on selected capabilities that might not be present in the majority of electronic structure packages either among planewave codes or, in general, treatment of strongly correlated materials using DMFT; materials under finite electric fields; properties at nuclei (electric field gradient, Mössbauer shifts, and orbital magnetization); positron annihilation; Raman intensities and electro-optic effect; and DFPT calculations of response to strain perturbation (elastic constants and piezoelectricity), spatial dispersion (flexoelectricity), electronic mobility, temperature dependence of the gap, and spin-magnetic-field perturbation. The ABINIT DFPT implementation is very general, including systems with van der Waals interaction or with noncollinear magnetism. Community projects are also described: generation of pseudopotential and PAW datasets, high-throughput calculations (databases of phonon band structure, second-harmonic generation, and GW computations of bandgaps), and the library LIBPAW. ABINIT has strong links with many other software projects that are briefly mentioned.es_ES
dc.description.sponsorshipThis work (A.H.R.) was supported by the DMREF-NSF Grant No. 1434897, National Science Foundation OAC-1740111, and U.S. Department of Energy DE-SC0016176 and DE-SC0019491 projects. N.A.P. and M.J.V. gratefully acknowledge funding from the Belgian Fonds National de la Recherche Scientifique (FNRS) under Grant No. PDR T.1077.15-1/7. M.J.V. also acknowledges a sabbatical “OUT” grant at ICN2 Barcelona as well as ULiège and the Communauté Française de Belgique (Grant No. ARC AIMED G.A. 15/19-09). X.G. and M.J.V. acknowledge funding from the FNRS under Grant No. T.0103.19-ALPS. X.G. and G.-M. R. acknowledge support from the Communauté française de Belgique through the SURFASCOPE Project (No. ARC 19/24-057). X.G. acknowledges the hospitality of the CEA DAM-DIF during the year 2017. G.H. acknowledges support from the U.S. Department of Energy, Office of Science, Office of Basic Energy Sciences, Materials Sciences and Engineering Division under Contract No. DE-AC02-05-CH11231 (Materials Project Program No. KC23MP). The Belgian authors acknowledge computational resources from supercomputing facilities of the University of Liège, the Consortium des Equipements de Calcul Intensif (Grant No. FRS-FNRS G.A. 2.5020.11), and Zenobe/CENAERO funded by the Walloon Region under Grant No. G.A. 1117545. M.C. and O.G. acknowledge support from the Fonds de Recherche du Québec Nature et Technologie (FRQ-NT), Canada, and the Natural Sciences and Engineering Research Council of Canada (NSERC) under Grant No. RGPIN-2016-06666. The implementation of the libpaw library (M.T., T.R., and D.C.) was supported by the ANR NEWCASTLE project (Grant No. ANR-2010-COSI-005-01) of the French National Research Agency. M.R. and M.S. acknowledge funding from Ministerio de Economia, Industria y Competitividad (MINECO-Spain) (Grants Nos. MAT2016-77100-C2-2-P and SEV-2015-0496) and Generalitat de Catalunya (Grant No. 2017 SGR1506). This work has received funding from the European Research Council (ERC) under the European Union’s Horizon 2020 Research and Innovation program (Grant Agreement No. 724529). P.G. acknowledges support from FNRS Belgium through PDR (Grant No. HiT4FiT), ULiège and the Communauté française de Belgique through the ARC project AIMED, the EU and FNRS through M.ERA.NET project SIOX, and the European Funds for Regional Developments (FEDER) and the Walloon Region in the framework of the operational program “Wallonie-2020.EU” through the project Multifunctional thin films/LoCoTED. The Flatiron Institute is a division of the Simons Foundation. A large part of the data presented in this paper is available directly from the Abinit Web page www.abinit.org. Any other data not appearing in this web page can be provided by the corresponding author upon reasonable request.es_ES
dc.language.isoenges_ES
dc.publisherAmerican Institute of Physicses_ES
dc.relationinfo:eu-repo/grantAgreement/MINECO/Plan Estatal de Investigación Científica y Técnica y de Innovación 2013-2016/MAT2016-77100-C2-2-Pes_ES
dc.relationinfo:eu-repo/grantAgreement/MINECO/Plan Estatal de Investigación Científica y Técnica y de Innovación 2013-2016/SEV-2015-0496es_ES
dc.relationinfo:eu-repo/grantAgreement/EC/H2020/724529es_ES
dc.relation.isversionofPublisher's versiones_ES
dc.rightsopenAccessen_EN
dc.subjectElectric fieldses_ES
dc.subjectDynamical mean-field theoryes_ES
dc.subjectPerturbation theoryes_ES
dc.subjectDielectric materialses_ES
dc.subjectVan der Waals forceses_ES
dc.subjectRaman spectroscopyes_ES
dc.subjectElectronic bandstructurees_ES
dc.subjectDensity functional theoryes_ES
dc.subjectElectronic structure methodses_ES
dc.subjectMagnetic fieldses_ES
dc.titleABINIT: Overview and focus on selected capabilitieses_ES
dc.typeartículoes_ES
dc.description.peerreviewedPeer reviewedes_ES
dc.relation.publisherversionhttp://dx.doi.org/10.1063/1.5144261es_ES
dc.embargo.terms2021-03-31es_ES
dc.contributor.funderNational Science Foundation (US)es_ES
dc.contributor.funderDepartment of Energy (US)es_ES
dc.contributor.funderFonds de la Recherche Scientifique (Fédération Wallonie-Bruxelles)es_ES
dc.contributor.funderUniversité de Liègees_ES
dc.contributor.funderCommunauté Française de Belgiquees_ES
dc.contributor.funderFonds de la Recherche Scientifique (Fédération Wallonie-Bruxelles)es_ES
dc.contributor.funderFonds de Recherche Nature et Technologies (Canada)es_ES
dc.contributor.funderNatural Sciences and Engineering Research Council of Canadaes_ES
dc.contributor.funderAgence Nationale de la Recherche (France)es_ES
dc.contributor.funderMinisterio de Economía, Industria y Competitividad (España)es_ES
dc.contributor.funderGeneralitat de Catalunyaes_ES
dc.contributor.funderEuropean Research Counciles_ES
dc.contributor.funderEuropean Commissiones_ES
dc.relation.csices_ES
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