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Dive into the research topics where Kristian Sommer Thygesen is active.

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Featured researches published by Kristian Sommer Thygesen.


Journal of Physics: Condensed Matter | 2010

Electronic structure calculations with GPAW: A real-space implementation of the projector augmented-wave method

J. Enkovaara; C. Rostgaard; Jens Jørgen Mortensen; Jingzhe Chen; Marcin Dulak; Lara Ferrighi; Jeppe Gavnholt; Christian Glinsvad; V. Haikola; Heine Anton Hansen; Henrik H. Kristoffersen; M. Kuisma; Ask Hjorth Larsen; L. Lehtovaara; Mathias P. Ljungberg; Olga Lopez-Acevedo; Poul Georg Moses; J. Ojanen; Thomas Olsen; Vivien Gabriele Petzold; Nichols A. Romero; Stausholm-Møller J; Mikkel Strange; Georgios Tritsaris; Marco Vanin; Michael Walter; Bjørk Hammer; Hannu Häkkinen; Georg K. H. Madsen; Risto M. Nieminen

Electronic structure calculations have become an indispensable tool in many areas of materials science and quantum chemistry. Even though the Kohn-Sham formulation of the density-functional theory (DFT) simplifies the many-body problem significantly, one is still confronted with several numerical challenges. In this article we present the projector augmented-wave (PAW) method as implemented in the GPAW program package (https://wiki.fysik.dtu.dk/gpaw) using a uniform real-space grid representation of the electronic wavefunctions. Compared to more traditional plane wave or localized basis set approaches, real-space grids offer several advantages, most notably good computational scalability and systematic convergence properties. However, as a unique feature GPAW also facilitates a localized atomic-orbital basis set in addition to the grid. The efficient atomic basis set is complementary to the more accurate grid, and the possibility to seamlessly switch between the two representations provides great flexibility. While DFT allows one to study ground state properties, time-dependent density-functional theory (TDDFT) provides access to the excited states. We have implemented the two common formulations of TDDFT, namely the linear-response and the time propagation schemes. Electron transport calculations under finite-bias conditions can be performed with GPAW using non-equilibrium Green functions and the localized basis set. In addition to the basic features of the real-space PAW method, we also describe the implementation of selected exchange-correlation functionals, parallelization schemes, ΔSCF-method, x-ray absorption spectra, and maximally localized Wannier orbitals.


Physical Review B | 2010

Graphene on metals: a Van der Waals density functional study

Marco Vanin; Jens Jørgen Mortensen; André K. Kelkkanen; J. M. García-Lastra; Kristian Sommer Thygesen; Karsten Wedel Jacobsen

We use density functional theory (DFT) with a recently developed van der Waals density functional (vdW-DF) to study the adsorption of graphene on Al, Cu, Ag, Au, Pt, Pd, Co and Ni(111) surfaces. In constrast to the local density approximation (LDA) which predicts relatively strong binding for Ni,Co and Pd, the vdW-DF predicts weak binding for all metals and metal-graphene distances in the range 3.40-3.72 \AA. At these distances the graphene bandstructure as calculated with DFT and the many-body G


Journal of Chemical Physics | 2010

Communications: Elementary oxygen electrode reactions in the aprotic Li-air battery

Jens Strabo Hummelshøj; J. Blomqvist; Soumendu Datta; Tejs Vegge; Jan Rossmeisl; Kristian Sommer Thygesen; Alan C. Luntz; Karsten Wedel Jacobsen; Jens K. Nørskov

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Journal of Physical Chemistry C | 2015

Computational 2D Materials Database: Electronic Structure of Transition-Metal Dichalcogenides and Oxides

Filip Anselm Rasmussen; Kristian Sommer Thygesen

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Physical Review B | 2012

Phonon-limited mobility in n-type single-layer MoS2 from first principles

Kristen Kaasbjerg; Kristian Sommer Thygesen; Karsten Wedel Jacobsen

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Nano Letters | 2010

The Relation between Structure and Quantum Interference in Single Molecule Junctions

Troels Markussen; Robert Stadler; Kristian Sommer Thygesen

method is basically unaffected by the substrate, in particular there is no opening of a band gap at the


Energy and Environmental Science | 2012

Computational screening of perovskite metal oxides for optimal solar light capture

Ivano Eligio Castelli; Thomas Olsen; Soumendu Datta; David Dominic Landis; Søren Dahl; Kristian Sommer Thygesen; Karsten Wedel Jacobsen

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Physical Review B | 2009

Polarization-induced renormalization of molecular levels at metallic and semiconducting surfaces

J. M. García-Lastra; C. Rostgaard; Angel Rubio; Kristian Sommer Thygesen

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Physical Review B | 2009

Localized atomic basis set in the projector augmented wave method

Ask Hjorth Larsen; Marco Vanin; Jens Jørgen Mortensen; Kristian Sommer Thygesen; Karsten Wedel Jacobsen

We discuss the electrochemical reactions at the oxygen electrode of an aprotic Li-air battery. Using density functional theory to estimate the free energy of intermediates during the discharge and charge of the battery, we introduce a reaction free energy diagram and identify possible origins of the overpotential for both processes. We also address the question of electron conductivity through the Li(2)O(2) electrode and show that in the presence of Li vacancies Li(2)O(2) becomes a conductor.


Physical Review B | 2010

Fully self-consistent GW calculations for molecules

C. Rostgaard; Karsten Wedel Jacobsen; Kristian Sommer Thygesen

We present a comprehensive first-principles study of the electronic structure of 51 semiconducting monolayer transition-metal dichalcogenides and -oxides in the 2H and 1T hexagonal phases. The quasiparticle (QP) band structures with spin–orbit coupling are calculated in the G0W0 approximation, and comparison is made with different density functional theory descriptions. Pitfalls related to the convergence of GW calculations for two-dimensional (2D) materials are discussed together with possible solutions. The monolayer band edge positions relative to vacuum are used to estimate the band alignment at various heterostructure interfaces. The sensitivity of the band structures to the in-plane lattice constant is analyzed and rationalized in terms of the electronic structure. Finally, the q-dependent dielectric functions and effective electron and hole masses are obtained from the QP band structure and used as input to a 2D hydrogenic model to estimate exciton binding energies. Throughout the paper we focus on...

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Karsten Wedel Jacobsen

Technical University of Denmark

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Thomas Olsen

Technical University of Denmark

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Mikkel Strange

Technical University of Denmark

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J. M. García-Lastra

Technical University of Denmark

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Mohnish Pandey

Technical University of Denmark

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Troels Markussen

Technical University of Denmark

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Ivano Eligio Castelli

Technical University of Denmark

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Jens Jørgen Mortensen

Technical University of Denmark

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Simone Latini

Technical University of Denmark

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