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Dive into the research topics where Jens K. Nørskov is active.

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Featured researches published by Jens K. Nørskov.


Nature Chemistry | 2009

Alloys of platinum and early transition metals as oxygen reduction electrocatalysts

Jeffrey Greeley; Ifan E. L. Stephens; Alexander S. Bondarenko; Tobias Peter Johansson; Heine Anton Hansen; Thomas F. Jaramillo; Jan Rossmeisl; Ib Chorkendorff; Jens K. Nørskov

The widespread use of low-temperature polymer electrolyte membrane fuel cells for mobile applications will require significant reductions in the amount of expensive Pt contained within their cathodes, which drive the oxygen reduction reaction (ORR). Although progress has been made in this respect, further reductions through the development of more active and stable electrocatalysts are still necessary. Here we describe a new set of ORR electrocatalysts consisting of Pd or Pt alloyed with early transition metals such as Sc or Y. They were identified using density functional theory calculations as being the most stable Pt- and Pd-based binary alloys with ORR activity likely to be better than Pt. Electrochemical measurements show that the activity of polycrystalline Pt(3)Sc and Pt(3)Y electrodes is enhanced relative to pure Pt by a factor of 1.5-1.8 and 6-10, respectively, in the range 0.9-0.87 V.


Nature Chemistry | 2009

Towards the computational design of solid catalysts

Jens K. Nørskov; Thomas Bligaard; Jan Rossmeisl; Claus H. Christensen

Over the past decade the theoretical description of surface reactions has undergone a radical development. Advances in density functional theory mean it is now possible to describe catalytic reactions at surfaces with the detail and accuracy required for computational results to compare favourably with experiments. Theoretical methods can be used to describe surface chemical reactions in detail and to understand variations in catalytic activity from one catalyst to another. Here, we review the first steps towards using computational methods to design new catalysts. Examples include screening for catalysts with increased activity and catalysts with improved selectivity. We discuss how, in the future, such methods may be used to engineer the electronic structure of the active surface by changing its composition and structure.


Surface Science | 1995

Electronic factors determining the reactivity of metal surfaces

Bjørk Hammer; Jens K. Nørskov

Abstract Based on density functional theory calculations of H 2 dissociation on Al(111), Cu(111), Pt(111) and Cu 3 Pt(111) we present a consistent picture of some key physical properties determining the reactivity of metal and alloy surfaces. The four metal surfaces are chosen to represent metals with no t -bands, with filled d -bands and with d -states at the Fermi level. We show that electronic states in the entire valence band of the metal surface are responsible for the reactivity, which consequently cannot be understood solely in terms of the density of states at the Fermi nor in terms d -states above it. Rather we suggest that trends in reactivities can be understood in terms of the hybridization energy between the bonding and anti-bonding adsorbate states and the metal d -bands (when present), and we demonstrate that a simple frozen potential based estimate of the hybridization energy correlates well with the calculated variation of the barrier height for the different metal surfaces.


Advances in Catalysis | 2000

Theoretical Surface Science and Catalysis: Calculations and Concepts

Bjørk Hammer; Jens K. Nørskov

Abstract The application of density functional theory to calculate adsorption properties, reaction pathways, and activation energies for surface chemical reactions is reviewed. Particular emphasis is placed on developing concepts that can be used to understand and predict variations in reactivity from one transition metal to the next or the effects of alloying, surface structure, and adsorbate-adsorbate interactions on the reactivity. Most examples discussed are concerned with the catalytic properties of transition metal surfaces, but it is shown that the calculational approach and the concepts developed to understand trends in reactivity for metals can also be used for sulfide and oxide catalysts.


Nature | 2004

Atomic-scale imaging of carbon nanofibre growth

Stig Helveg; C. López-Cartes; Jens Sehested; Poul L. Hansen; B.S. Clausen; Jens R. Rostrup-Nielsen; Frank Abild-Pedersen; Jens K. Nørskov

The synthesis of carbon nanotubes with predefined structure and functionality plays a central role in the field of nanotechnology, whereas the inhibition of carbon growth is needed to prevent a breakdown of industrial catalysts for hydrogen and synthesis gas production. The growth of carbon nanotubes and nanofibres has therefore been widely studied. Recent advances in in situ techniques now open up the possibility of studying gas–solid interactions at the atomic level. Here we present time-resolved, high-resolution in situ transmission electron microscope observations of the formation of carbon nanofibres from methane decomposition over supported nickel nanocrystals. Carbon nanofibres are observed to develop through a reaction-induced reshaping of the nickel nanocrystals. Specifically, the nucleation and growth of graphene layers are found to be assisted by a dynamic formation and restructuring of mono-atomic step edges at the nickel surface. Density-functional theory calculations indicate that the observations are consistent with a growth mechanism involving surface diffusion of carbon and nickel atoms. The finding that metallic step edges act as spatiotemporal dynamic growth sites may be important for understanding other types of catalytic reactions and nanomaterial syntheses.


Journal of The Electrochemical Society | 2005

Trends in the Exchange Current for Hydrogen Evolution

Jens K. Nørskov; Thomas Bligaard; Ashildur Logadottir; John R. Kitchin; Jingguang G. Chen; S. Pandelov; Ulrich Stimming

Department of Physics, Technical University Munich, D-85748 Garching, GermanyA density functional theory database of hydrogen chemisorption energies on close packed surfaces of a number of transition andnoble metals is presented. The bond energies are used to understand the trends in the exchange current for hydrogen evolution. Avolcano curve is obtained when measured exchange currents are plotted as a function of the calculated hydrogen adsorptionenergies and a simple kinetic model is developed to understand the origin of the volcano. The volcano curve is also consistent withPt being the most efficient electrocatalyst for hydrogen evolution.© 2005 The Electrochemical Society. @DOI: 10.1149/1.1856988# All rights reserved.Manuscript submitted May 10, 2004; revised manuscript received August 12, 2004. Available electronically January 24, 2005.


Chemcatchem | 2011

Universality in Oxygen Evolution Electrocatalysis on Oxide Surfaces

Isabela C. Man; Hai-Yan Su; Federico Calle-Vallejo; Heine A. Hansen; José I. Martínez; Nilay İnoğlu; John R. Kitchin; Thomas F. Jaramillo; Jens K. Nørskov; Jan Rossmeisl

Trends in electrocatalytic activity of the oxygen evolution reaction (OER) are investigated on the basis of a large database of HO* and HOO* adsorption energies on oxide surfaces. The theoretical overpotential was calculated by applying standard density functional theory in combination with the computational standard hydrogen electrode (SHE) model. We showed that by the discovery of a universal scaling relation between the adsorption energies of HOO* vs HO*, it is possible to analyze the reaction free energy diagrams of all the oxides in a general way. This gave rise to an activity volcano that was the same for a wide variety of oxide catalyst materials and a universal descriptor for the oxygen evolution activity, which suggests a fundamental limitation on the maximum oxygen evolution activity of planar oxide catalysts.


Science | 2012

The Active Site of Methanol Synthesis over Cu/ZnO/Al2O3 Industrial Catalysts

Malte Behrens; Felix Studt; Igor Kasatkin; Stefanie Kühl; Michael Hävecker; Frank Abild-Pedersen; Stefan Zander; Frank Girgsdies; Patrick Kurr; Benjamin-Louis Kniep; Michael Tovar; Richard W. Fischer; Jens K. Nørskov; Robert Schlögl

Mechanisms in Methanol Catalysis The industrial production of methanol from hydrogen and carbon monoxide depends on the use of copper and zinc oxide nanoparticles on alumina oxide supports. This catalyst is “structure sensitive”; its activity can vary by orders of magnitude, depending on how it is prepared. Behrens et al. (p. 893, published online 19 April; see the Perspective by Greeley) used a combination of bulk and surface-sensitive analysis and imaging methods—along with insights from density functional theory calculations—to study several catalysts, including the one similar to that used industrially. High activity depended on the presence of steps on the copper nanoparticles stabilized by defects such as stacking faults. Partial coverage of the copper nanoparticles with zinc oxide was critical for stabilizing surface intermediates such as HCO and lowering energetic barriers to the methanol product. Catalysis is favored by stepped copper nanoparticles decorated with zinc oxide, which promotes stronger intermediate binding. One of the main stumbling blocks in developing rational design strategies for heterogeneous catalysis is that the complexity of the catalysts impairs efforts to characterize their active sites. We show how to identify the crucial atomic structure motif for the industrial Cu/ZnO/Al2O3 methanol synthesis catalyst by using a combination of experimental evidence from bulk, surface-sensitive, and imaging methods collected on real high-performance catalytic systems in combination with density functional theory calculations. The active site consists of Cu steps decorated with Zn atoms, all stabilized by a series of well-defined bulk defects and surface species that need to be present jointly for the system to work.


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.


Journal of Chemical Physics | 2004

Modification of the surface electronic and chemical properties of Pt(111) by subsurface 3d transition metals

John R. Kitchin; Jens K. Nørskov; Mark A. Barteau; Jingguang G. Chen

The modification of the electronic and chemical properties of Pt(111) surfaces by subsurface 3d transition metals was studied using density-functional theory. In each case investigated, the Pt surface d-band was broadened and lowered in energy by interactions with the subsurface 3d metals, resulting in weaker dissociative adsorption energies of hydrogen and oxygen on these surfaces. The magnitude of the decrease in adsorption energy was largest for the early 3d transition metals and smallest for the late 3d transition metals. In some cases, dissociative adsorption was calculated to be endothermic. The surfaces investigated in this study had no lateral strain in them, demonstrating that strain is not a necessary factor in the modification of bimetallic surface properties. The implications of these findings are discussed in the context of catalyst design, particularly for fuel cell electrocatalysts.

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Frank Abild-Pedersen

Technical University of Denmark

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Karsten Wedel Jacobsen

Technical University of Denmark

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Jan Rossmeisl

University of Copenhagen

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Claus H. Christensen

Technical University of Denmark

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Felix Studt

Technical University of Denmark

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Ib Chorkendorff

Technical University of Denmark

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