The atomistic understanding of the dissociation mechanisms for large molecules adsorbed on surfaces is still a challenge in heterogeneous catalysis. This is especially true for polycyclic aromatic hydrocarbons, which represent an important class of organic compounds used to produce novel graphene-based architectures. Here, we show that coronene molecules adsorbed on Ir(111) undergo major conformational changes during dissociation. They first tilt upward with respect to the surface, still keeping their planar configuration, and subsequently experience a rotation, which changes the molecular axis orientation. Upon lifting, the internal C–C strain is initially relieved; as the dehydrogenation proceeds, the molecules experience a progressive in...
Our scanning tunneling microscopy and X-ray photoelectron spectroscopy experiments along with first-...
The complete mechanism behind the thermal decomposition of ethylene (C2H4) on Ir(111), which is the ...
The complete mechanism behind the thermal decomposition of ethylene (C2H4) on Ir(111), which is the ...
The atomistic understanding of the dissociation mechanisms for large molecules adsorbed on surfaces ...
In this work, we characterize the adsorption of pentacene molecules on Ir(111) and their behaviour a...
9siIn this work, we characterize the adsorption of pentacene molecules on Ir(111) and their behaviou...
New nanoarchitectures can be built from polycyclic aromatic hydrocarbons (PAHs) by exploiting the ca...
In the present work, we report the fabrication of regular coronene (COR) clusters on surfaces in amb...
Diverse technologies from catalyst coking to graphene synthesis entail hydrocarbon dehydrogenation a...
Hydrogen functionalization of graphene by exposure to vibrationally excited H<sub>2</sub> molecules ...
Using scanning tunneling microscopy, we show that coronene molecules form supramolecular structures ...
Designing exotic structures in low dimensions is key in today\u27s quest to tailor novel quantum sta...
The prototypical surface reaction of 10,10'-dibromo-9,9'-bianthryl (DBBA) towards the 7-atom-wide ar...
Using scanning tunneling microscopy, we show that coronene molecules form supramolecular structures ...
Our scanning tunneling microscopy and X-ray photoelectron spectroscopy experiments along with first-...
Our scanning tunneling microscopy and X-ray photoelectron spectroscopy experiments along with first-...
The complete mechanism behind the thermal decomposition of ethylene (C2H4) on Ir(111), which is the ...
The complete mechanism behind the thermal decomposition of ethylene (C2H4) on Ir(111), which is the ...
The atomistic understanding of the dissociation mechanisms for large molecules adsorbed on surfaces ...
In this work, we characterize the adsorption of pentacene molecules on Ir(111) and their behaviour a...
9siIn this work, we characterize the adsorption of pentacene molecules on Ir(111) and their behaviou...
New nanoarchitectures can be built from polycyclic aromatic hydrocarbons (PAHs) by exploiting the ca...
In the present work, we report the fabrication of regular coronene (COR) clusters on surfaces in amb...
Diverse technologies from catalyst coking to graphene synthesis entail hydrocarbon dehydrogenation a...
Hydrogen functionalization of graphene by exposure to vibrationally excited H<sub>2</sub> molecules ...
Using scanning tunneling microscopy, we show that coronene molecules form supramolecular structures ...
Designing exotic structures in low dimensions is key in today\u27s quest to tailor novel quantum sta...
The prototypical surface reaction of 10,10'-dibromo-9,9'-bianthryl (DBBA) towards the 7-atom-wide ar...
Using scanning tunneling microscopy, we show that coronene molecules form supramolecular structures ...
Our scanning tunneling microscopy and X-ray photoelectron spectroscopy experiments along with first-...
Our scanning tunneling microscopy and X-ray photoelectron spectroscopy experiments along with first-...
The complete mechanism behind the thermal decomposition of ethylene (C2H4) on Ir(111), which is the ...
The complete mechanism behind the thermal decomposition of ethylene (C2H4) on Ir(111), which is the ...