While pristine graphene (G) is chemically inert, chemical doping is currently regarded as a leading strategy for fine-tuning both G electronic properties and reactivity toward adsorbed species. Following recent experimental work, we demonstrate that deposition of G on Ni(111) and introduction of N-based defects in the G lattice lead to cooperative effects, determining sizeable chemical reactivity toward CO adsorption. CO chemisorption is predicted on pyridinic-, pyrrolic-, and epoxy-like defects generated by N-ion bombardment, compatibly with the experiment. Comparison with O-2 adsorption further reveals selective reactivity of the defective system with respect to distinct gaseous moieties, thereby opening new pathways toward high-sensitivi...
The aim of this work is to study the influence of molecular and atomic adsorbates on graphene/Ni(111...
Graphene is commonly regarded as an inert material. However, it is well known that the presence of d...
Nanocluster arrays on graphene are suitable model systems for catalysis. We use this model system to...
Fine-tuning the electronic and chemical properties of graphene is currently one of the main goals in...
The chemical reactivity of single layers of supported graphene (G) is affected by the nature of the ...
We investigate CO adsorption at single vacancies of graphene supported on Ni(111) and polycrystallin...
Free standing graphene is chemically inert but, as recently demonstrated, CO chemisorption occurs at...
In this chapter I will describe the chemical reactivity and the electronical properties variation of...
openThe experimental work presented in this PhD thesis fits into the fields of gas sensors, gas stor...
The chemical reactivity and the electronical properties variation of graphene (G) supported on Ni(11...
Taking the adsorption of CO, NO, O2 and O as probes, we investigated the electronic structure of tra...
Taking the adsorption of CO, NO, O2 and O as probes, we investigated the electronic structure of tra...
17siUnder near-ambient pressure conditions, carbon monoxide molecules intercalate underneath an epit...
9siMolecules intercalate at the graphene/metal interface even though defect-free graphene is imperme...
Graphene is suitable for use as a high-performance sensor material due to its unique atomically-thin...
The aim of this work is to study the influence of molecular and atomic adsorbates on graphene/Ni(111...
Graphene is commonly regarded as an inert material. However, it is well known that the presence of d...
Nanocluster arrays on graphene are suitable model systems for catalysis. We use this model system to...
Fine-tuning the electronic and chemical properties of graphene is currently one of the main goals in...
The chemical reactivity of single layers of supported graphene (G) is affected by the nature of the ...
We investigate CO adsorption at single vacancies of graphene supported on Ni(111) and polycrystallin...
Free standing graphene is chemically inert but, as recently demonstrated, CO chemisorption occurs at...
In this chapter I will describe the chemical reactivity and the electronical properties variation of...
openThe experimental work presented in this PhD thesis fits into the fields of gas sensors, gas stor...
The chemical reactivity and the electronical properties variation of graphene (G) supported on Ni(11...
Taking the adsorption of CO, NO, O2 and O as probes, we investigated the electronic structure of tra...
Taking the adsorption of CO, NO, O2 and O as probes, we investigated the electronic structure of tra...
17siUnder near-ambient pressure conditions, carbon monoxide molecules intercalate underneath an epit...
9siMolecules intercalate at the graphene/metal interface even though defect-free graphene is imperme...
Graphene is suitable for use as a high-performance sensor material due to its unique atomically-thin...
The aim of this work is to study the influence of molecular and atomic adsorbates on graphene/Ni(111...
Graphene is commonly regarded as an inert material. However, it is well known that the presence of d...
Nanocluster arrays on graphene are suitable model systems for catalysis. We use this model system to...