Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Andrea Dal Corso is active.

Publication


Featured researches published by Andrea Dal Corso.


Journal of Physics: Condensed Matter | 2009

QUANTUM ESPRESSO: a modular and open-source software project for quantum simulations of materials

Paolo Giannozzi; Stefano Baroni; Nicola Bonini; Matteo Calandra; Roberto Car; Carlo Cavazzoni; Davide Ceresoli; Guido L. Chiarotti; Matteo Cococcioni; Ismaila Dabo; Andrea Dal Corso; Stefano de Gironcoli; Stefano Fabris; Guido Fratesi; Ralph Gebauer; Uwe Gerstmann; Christos Gougoussis; Anton Kokalj; Michele Lazzeri; Layla Martin-Samos; Nicola Marzari; Francesco Mauri; Riccardo Mazzarello; Stefano Paolini; Alfredo Pasquarello; Lorenzo Paulatto; Carlo Sbraccia; Sandro Scandolo; Gabriele Sclauzero; Ari P. Seitsonen

QUANTUM ESPRESSO is an integrated suite of computer codes for electronic-structure calculations and materials modeling, based on density-functional theory, plane waves, and pseudopotentials (norm-conserving, ultrasoft, and projector-augmented wave). The acronym ESPRESSO stands for opEn Source Package for Research in Electronic Structure, Simulation, and Optimization. It is freely available to researchers around the world under the terms of the GNU General Public License. QUANTUM ESPRESSO builds upon newly-restructured electronic-structure codes that have been developed and tested by some of the original authors of novel electronic-structure algorithms and applied in the last twenty years by some of the leading materials modeling groups worldwide. Innovation and efficiency are still its main focus, with special attention paid to massively parallel architectures, and a great effort being devoted to user friendliness. QUANTUM ESPRESSO is evolving towards a distribution of independent and interoperable codes in the spirit of an open-source project, where researchers active in the field of electronic-structure calculations are encouraged to participate in the project by contributing their own codes or by implementing their own ideas into existing codes.


Reviews of Modern Physics | 2001

Phonons and related crystal properties from density-functional perturbation theory

Stefano Baroni; Stefano de Gironcoli; Andrea Dal Corso; Paolo Giannozzi

This article reviews the current status of lattice-dynamical calculations in crystals, using density-functional perturbation theory, with emphasis on the plane-wave pseudopotential method. Several specialized topics are treated, including the implementation for metals, the calculation of the response to macroscopic electric fields and their relevance to long-wavelength vibrations in polar materials, the response to strain deformations, and higher-order responses. The success of this methodology is demonstrated with a number of applications existing in the literature.


Science | 2016

Reproducibility in density functional theory calculations of solids

Kurt Lejaeghere; Gustav Bihlmayer; Torbjörn Björkman; Peter Blaha; Stefan Blügel; Volker Blum; Damien Caliste; Ivano Eligio Castelli; Stewart J. Clark; Andrea Dal Corso; Stefano de Gironcoli; Thierry Deutsch; J. K. Dewhurst; Igor Di Marco; Claudia Draxl; Marcin Dulak; Olle Eriksson; José A. Flores-Livas; Kevin F. Garrity; Luigi Genovese; Paolo Giannozzi; Matteo Giantomassi; Stefan Goedecker; Xavier Gonze; Oscar Grånäs; E. K. U. Gross; Andris Gulans; Francois Gygi; D. R. Hamann; Phil Hasnip

A comparison of DFT methods Density functional theory (DFT) is now routinely used for simulating material properties. Many software packages are available, which makes it challenging to know which are the best to use for a specific calculation. Lejaeghere et al. compared the calculated values for the equation of states for 71 elemental crystals from 15 different widely used DFT codes employing 40 different potentials (see the Perspective by Skylaris). Although there were variations in the calculated values, most recent codes and methods converged toward a single value, with errors comparable to those of experiment. Science, this issue p. 10.1126/science.aad3000; see also p. 1394 A survey of recent density functional theory methods shows a convergence to more accurate property calculations. [Also see Perspective by Skylaris] INTRODUCTION The reproducibility of results is one of the underlying principles of science. An observation can only be accepted by the scientific community when it can be confirmed by independent studies. However, reproducibility does not come easily. Recent works have painfully exposed cases where previous conclusions were not upheld. The scrutiny of the scientific community has also turned to research involving computer programs, finding that reproducibility depends more strongly on implementation than commonly thought. These problems are especially relevant for property predictions of crystals and molecules, which hinge on precise computer implementations of the governing equation of quantum physics. RATIONALE This work focuses on density functional theory (DFT), a particularly popular quantum method for both academic and industrial applications. More than 15,000 DFT papers are published each year, and DFT is now increasingly used in an automated fashion to build large databases or apply multiscale techniques with limited human supervision. Therefore, the reproducibility of DFT results underlies the scientific credibility of a substantial fraction of current work in the natural and engineering sciences. A plethora of DFT computer codes are available, many of them differing considerably in their details of implementation, and each yielding a certain “precision” relative to other codes. How is one to decide for more than a few simple cases which code predicts the correct result, and which does not? We devised a procedure to assess the precision of DFT methods and used this to demonstrate reproducibility among many of the most widely used DFT codes. The essential part of this assessment is a pairwise comparison of a wide range of methods with respect to their predictions of the equations of state of the elemental crystals. This effort required the combined expertise of a large group of code developers and expert users. RESULTS We calculated equation-of-state data for four classes of DFT implementations, totaling 40 methods. Most codes agree very well, with pairwise differences that are comparable to those between different high-precision experiments. Even in the case of pseudization approaches, which largely depend on the atomic potentials used, a similar precision can be obtained as when using the full potential. The remaining deviations are due to subtle effects, such as specific numerical implementations or the treatment of relativistic terms. CONCLUSION Our work demonstrates that the precision of DFT implementations can be determined, even in the absence of one absolute reference code. Although this was not the case 5 to 10 years ago, most of the commonly used codes and methods are now found to predict essentially identical results. The established precision of DFT codes not only ensures the reproducibility of DFT predictions but also puts several past and future developments on a firmer footing. Any newly developed methodology can now be tested against the benchmark to verify whether it reaches the same level of precision. New DFT applications can be shown to have used a sufficiently precise method. Moreover, high-precision DFT calculations are essential for developing improvements to DFT methodology, such as new density functionals, which may further increase the predictive power of the simulations. Recent DFT methods yield reproducible results. Whereas older DFT implementations predict different values (red darts), codes have now evolved to mutual agreement (green darts). The scoreboard illustrates the good pairwise agreement of four classes of DFT implementations (horizontal direction) with all-electron results (vertical direction). Each number reflects the average difference between the equations of state for a given pair of methods, with the green-to-red color scheme showing the range from the best to the poorest agreement. The widespread popularity of density functional theory has given rise to an extensive range of dedicated codes for predicting molecular and crystalline properties. However, each code implements the formalism in a different way, raising questions about the reproducibility of such predictions. We report the results of a community-wide effort that compared 15 solid-state codes, using 40 different potentials or basis set types, to assess the quality of the Perdew-Burke-Ernzerhof equations of state for 71 elemental crystals. We conclude that predictions from recent codes and pseudopotentials agree very well, with pairwise differences that are comparable to those between different high-precision experiments. Older methods, however, have less precise agreement. Our benchmark provides a framework for users and developers to document the precision of new applications and methodological improvements.


Journal of Chemical Physics | 1998

Structural and electronic properties of small Cun clusters using generalized-gradient approximations within density functional theory

Carlo Massobrio; Alfredo Pasquarello; Andrea Dal Corso

Neutral and anionic Cun clusters (Cu2, Cu3, Cu6 and Cu7−) are studied within density functional theory via the local density approximation (LDA) and the generalized-gradient approximation (GGA) of Perdew and Wang for exchange and correlation. Three different levels of improvement upon the LDA are considered. In the first level, the GGA correction to the exchange-correlation energy is evaluated using the electronic density and the atomic coordinates obtained in the LDA calculation. In the second level, the electronic density is obtained self-consistently within the GGA while keeping the LDA structural configurations. In the third level, both electronic density and ionic positions are obtained fully self-consistently within the GGA. We found that the first level of approximation is already sufficient to correct the overbinding found in the LDA. With respect to the LDA, the self-consistent GGA enhances the electron charge accumulation around the nuclei by depleting the interatomic bonding regions.


Physical Review B | 2004

Ballistic conductance of magnetic Co and Ni nanowires with ultrasoft pseudopotentials

Alexander Smogunov; Andrea Dal Corso; Erio Tosatti

The scattering-based approach for calculating the ballistic conductance of open quantum systems is generalized to deal with magnetic transition metals as described by ultrasoft pseudo-potentials. As an application we present quantum-mechanical conductance calculations for monatomic Co and Ni nanowires with a magnetization reversal. We find that in both Co and Ni nanowires, at the Fermi energy, the conductance of


Philosophical Magazine Part B | 2001

Electron-vibration coupling constants in positively charged fullerene

Nicola Manini; Andrea Dal Corso; Michele Fabrizio; Erio Tosatti

d


Surface Science | 2002

Adsorption of atomic oxygen on Ag(001): a study based on density-functional theory

Gabriele Cipriani; David Loffreda; Andrea Dal Corso; Stefano de Gironcoli; Stefano Baroni

electrons is blocked by a magnetization reversal, while the


Journal of Physics: Condensed Matter | 2011

Ultrasoft pseudopotentials and projector augmented-wave data sets: application to diatomic molecules

Alwaleed Ahmed Adllan; Andrea Dal Corso

s


Journal of Physics: Condensed Matter | 2003

Complex band structures and decay length in polyethylene chains

Fabien Picaud; Alexander Smogunov; Andrea Dal Corso; Erio Tosatti

states (one per spin) are perfectly transmitted.


Journal of Chemical Physics | 2004

Electric fields with ultrasoft pseudo-potentials: Applications to benzene and anthracene

Jaroslav Tóbik; Andrea Dal Corso

d

Collaboration


Dive into the Andrea Dal Corso's collaboration.

Top Co-Authors

Avatar

Erio Tosatti

International School for Advanced Studies

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Alexander Smogunov

International Centre for Theoretical Physics

View shared research outputs
Top Co-Authors

Avatar

Stefano de Gironcoli

International School for Advanced Studies

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar

A. Baldereschi

École Polytechnique Fédérale de Lausanne

View shared research outputs
Top Co-Authors

Avatar

Gabriele Sclauzero

École Polytechnique Fédérale de Lausanne

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Researchain Logo
Decentralizing Knowledge