The hydrogenation reactions of nitrogen (NH n, (ads) + H (ads) → NH n + 1, (ads), n = 0, 1, 2) on metal surfaces are important elementary steps in the catalytic formation of ammonia. We investigate the reaction dynamics of these hydrogenations on a Ru(0001) surface using transition state theory, including small curvature tunneling corrections. Potential energy surfaces are derived by density functional theory (RPBE) in two or three dimensions. Tunneling is shown to enhance rates significantly for the first two hydrogenation steps at low and ambient temperatures, doubling reaction rates even at temperatures of 400 K. However, tunneling plays no significant role at curren...
Understanding the relative stability of CHx species on surfaces is necessary for mechanistic descrip...
The methanation reaction converting CO into CH4 at ca. 400 °C is proposed to take place on uncoordin...
The Haber-Bosch industrial process for synthesis of ammonia (NH<sub>3</sub>) from hydrogen and nitro...
The hydrogenation of nitrogen (N(ads)+H(ads)-->NH(ads)) on metal surfaces is an important step in am...
The title reaction is an important step in the synthesis of ammonia over ruthenium-based catalysts, ...
Thermodesorption rates for the desorption of ammonia from Ru(0 0 0 1) are calculated by Transition S...
The kinetics of NH and ND formation and dissociation reactions on Ru(001) were studied using time-de...
Hellman A, Baerends EJ, Biczysko M, et al. Predicting catalysis: Understanding ammonia synthesis fro...
We investigated the NH3 catalytic decomposition on Ru and Ir metal surfaces using density functional...
A first-principles microkinetic model has been developed and applied to ethylene hydrogenation over ...
ABSTRACT: An understanding of hydrogen diffusion on metal surfaces is important not only for its rol...
Here, we give a full account of a large collaborative effort toward an atomic-scale understanding of...
Understanding the relative stability of CHx species on surfaces is necessary for mechanistic descrip...
The Haber-Bosch industrial process for synthesis of ammonia (NH_3) from hydrogen and nitrogen produc...
Ammonia is one of the most produced chemicals in the world. Its industrial production emerged in the...
Understanding the relative stability of CHx species on surfaces is necessary for mechanistic descrip...
The methanation reaction converting CO into CH4 at ca. 400 °C is proposed to take place on uncoordin...
The Haber-Bosch industrial process for synthesis of ammonia (NH<sub>3</sub>) from hydrogen and nitro...
The hydrogenation of nitrogen (N(ads)+H(ads)-->NH(ads)) on metal surfaces is an important step in am...
The title reaction is an important step in the synthesis of ammonia over ruthenium-based catalysts, ...
Thermodesorption rates for the desorption of ammonia from Ru(0 0 0 1) are calculated by Transition S...
The kinetics of NH and ND formation and dissociation reactions on Ru(001) were studied using time-de...
Hellman A, Baerends EJ, Biczysko M, et al. Predicting catalysis: Understanding ammonia synthesis fro...
We investigated the NH3 catalytic decomposition on Ru and Ir metal surfaces using density functional...
A first-principles microkinetic model has been developed and applied to ethylene hydrogenation over ...
ABSTRACT: An understanding of hydrogen diffusion on metal surfaces is important not only for its rol...
Here, we give a full account of a large collaborative effort toward an atomic-scale understanding of...
Understanding the relative stability of CHx species on surfaces is necessary for mechanistic descrip...
The Haber-Bosch industrial process for synthesis of ammonia (NH_3) from hydrogen and nitrogen produc...
Ammonia is one of the most produced chemicals in the world. Its industrial production emerged in the...
Understanding the relative stability of CHx species on surfaces is necessary for mechanistic descrip...
The methanation reaction converting CO into CH4 at ca. 400 °C is proposed to take place on uncoordin...
The Haber-Bosch industrial process for synthesis of ammonia (NH<sub>3</sub>) from hydrogen and nitro...