Many-body perturbation theory calculations using the yambo code

Sangalli, D;Ferretti, A;Pereira Coutada Miranda, Henrique;Attaccalite, C;Marini, A;et.al.
(2019) Journal of Physics: Condensed Matter — Vol. 31, n° 32, p. 325902 (2019)

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Authors
  • Sangalli, Dorcid-logoIstituto di Struttura della Materia—Consiglio Nazionale delle Ricerche (CNR-ISM), Division of Ultrafast Processes in Materials (FLASHit), Monterotondo Stazione, Italy
    Author
  • Ferretti, Aorcid-logoCentro S3, Istituto Nanoscienze—Consiglio Nazionale delle Ricerche (CNR-NANO), Modena, Italy
    Author
  • Pereira Coutada Miranda, Henriqueorcid-logoUCLouvain
    Author
  • Attaccalite, Corcid-logoAix Marseille Université, CNRS, CINaM UMR 7325, Marseille, France
    Author
  • Marini, Aorcid-logoIstituto di Struttura della Materia—Consiglio Nazionale delle Ricerche (CNR-ISM), Division of Ultrafast Processes in Materials (FLASHit), Monterotondo Stazione, Italy
    Author
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Abstract
yambo is an open source project aimed at studying excited state properties of condensed matter systems from first principles using many-body methods. As input, yambo requires ground state electronic structure data as computed by density functional theory codes such as Quantum ESPRESSO and Abinit. yambo's capabilities include the calculation of linear response quantities (both independent-particle and including electron–hole interactions), quasi-particle corrections based on the GW formalism, optical absorption, and other spectroscopic quantities. Here we describe recent developments ranging from the inclusion of important but oft-neglected physical effects such as electron–phonon interactions to the implementation of a real-time propagation scheme for simulating linear and non-linear optical properties. Improvements to numerical algorithms and the user interface are outlined. Particular emphasis is given to the new and efficient parallel structure that makes it possible to exploit modern high performance computing architectures. Finally, we demonstrate the possibility to automate workflows by interfacing with the yambopy and AiiDA software tools.
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Citations

Sangalli, D., Ferretti, A., Pereira Coutada Miranda, H., Attaccalite, C., Marri, I., Cannuccia, E., Melo, P., Marsili, M., Paleari, F., Marrazzo, A., Prandini, G., Bonfà, P., Atambo, M. O., Affinito, F., Palummo, M., Molina-Sánchez, A., Hogan, C., Grüning, M., Varsano, D., & Marini, A. (2019). Many-body perturbation theory calculations using the yambo code. Journal of Physics: Condensed Matter, 31(32), 325902. https://doi.org/10.1088/1361-648x/ab15d0 (Original work published 2019)