This paper examines the reactive surface dynamics of energy- and angle-selected N2 dissociation on a clean Ru(0001) surface. Presented herein are the first STM images of highly energetic N2 dissociation on terrace sites utilizing a novel UHV instrument that combines a supersonic molecular beam with an in situ STM that is in-line with the molecular beam. Atomically resolved visualization of individual N2 dissociation events elucidates the fundamental reactive dynamics of the N2/Ru(0001) system by providing a detailed understanding of the on-surface dissociation dynamics: the distance and angle between nitrogen atoms from the same dissociated N2 molecule, site specificity and coordination of binding on terrace sites, and the local evolution o...
Understanding the dependence of the rate of catalytic reactions on metal nanoparticle size remains o...
We study the mechanism leading to the breaking of the N–H bonds in ammonia on Ru(0001) by means of s...
Molecular beam techniques have been used to study the dissociative chemisorption of nitrogen on W(11...
The excitation of electron-hole pairs in reactive scattering of molecules at metal surfaces often af...
The excitation of electron–hole pairs in reactive scattering of molecules at metal surfaces often af...
The work presented in this thesis explores multiple different systems with one overarching theme: a ...
In this letter, we investigate the reaction paths for the N2 dissociation on the Ru(112¯1) surface. ...
The dissociative chemisorption of N2 on Ru(0001), Ru(101̄0), and Ru(112̄1) surfaces at 300 K was stu...
Results on the scattering of hyperthermal N2 molecules from bare and N-covered Ru(0001) surfaces are...
This paper reports the simultaneous internal state and translational energy resolved associative de...
Atomic nitrogen on Ru(0001) was prepared by dissociative chemisorption of N2 and studied by scanning...
The interaction dynamics of NO with the reactive Ru(0001) surface has been investigated with the use...
The dynamics of the dissociative chemisorption of H2 on clean, hydrogen covered and nitrogen covered...
Despite intensive study of reactions on metals, it is unclear whether electronic excitations play an...
Understanding the dependence of the rate of catalytic reactions on metal nanoparticle size remains o...
We study the mechanism leading to the breaking of the N–H bonds in ammonia on Ru(0001) by means of s...
Molecular beam techniques have been used to study the dissociative chemisorption of nitrogen on W(11...
The excitation of electron-hole pairs in reactive scattering of molecules at metal surfaces often af...
The excitation of electron–hole pairs in reactive scattering of molecules at metal surfaces often af...
The work presented in this thesis explores multiple different systems with one overarching theme: a ...
In this letter, we investigate the reaction paths for the N2 dissociation on the Ru(112¯1) surface. ...
The dissociative chemisorption of N2 on Ru(0001), Ru(101̄0), and Ru(112̄1) surfaces at 300 K was stu...
Results on the scattering of hyperthermal N2 molecules from bare and N-covered Ru(0001) surfaces are...
This paper reports the simultaneous internal state and translational energy resolved associative de...
Atomic nitrogen on Ru(0001) was prepared by dissociative chemisorption of N2 and studied by scanning...
The interaction dynamics of NO with the reactive Ru(0001) surface has been investigated with the use...
The dynamics of the dissociative chemisorption of H2 on clean, hydrogen covered and nitrogen covered...
Despite intensive study of reactions on metals, it is unclear whether electronic excitations play an...
Understanding the dependence of the rate of catalytic reactions on metal nanoparticle size remains o...
We study the mechanism leading to the breaking of the N–H bonds in ammonia on Ru(0001) by means of s...
Molecular beam techniques have been used to study the dissociative chemisorption of nitrogen on W(11...