Recently, atomically well-defined cove-shaped graphene nanoribbons have been obtained using bottom-up synthesis. These nanoribbons have an optical gap in the visible range of the spectrum which make them candidates for donor materials in photovoltaic devices. From the atomistic point of view, their electronic and optical properties are not clearly understood. Therefore, in this work we carry out ab-initio density functional theory calculations combine with many-body perturbation formalism to study their electronic and optical properties. Through the comparison with experimental measurements, we show that an accurate description of the nanoribbon's optical properties requires the inclusion of electron-hole correlation effects. The energy, bi...
The search for new optical materials capable of absorbing light in the frequency range from visible ...
We present an analytical tight-binding theory of the optical properties of graphene nanoribbons with...
We report on excitonic spectra of armchair graphene nanoribbons (AGNRs) obtained from a full many-bo...
In this paper the excitons of armchair graphene nanoribbons with layers of different width...
We apply density functional theory to study the optical properties of armchair graphene nanoribbons ...
We investigate from first principles the optoelectronic properties of nanometer-sized armchair graph...
The bottom-up fabrication of graphene nanoribbons (GNRs) has opened new opportunities to specificall...
We present a systematic density functional theory study of the electronic properties, optical spectr...
We present some computational simulations of graphene-based nanoribbons with a number of half-twists...
By mixing pure precursor monomers and nitrogen-doped equivalents, atomically sharp wiggle-edged hete...
Armchair-edged narrow graphene nanoribbons (GNRs) are modelled by semi-empirical Hartree–Fock based ...
We present calculations of the optical absorption and electroabsorption spectra of graphene nanoribb...
We explore the implementation of specific optical properties of armchair graphene nanoribbons (AGNRs...
Narrow graphene nanoribbons exhibit substantial electronic bandgaps and optical properties fundament...
The search for new optical materials capable of absorbing light in the frequency range from visible ...
The search for new optical materials capable of absorbing light in the frequency range from visible ...
We present an analytical tight-binding theory of the optical properties of graphene nanoribbons with...
We report on excitonic spectra of armchair graphene nanoribbons (AGNRs) obtained from a full many-bo...
In this paper the excitons of armchair graphene nanoribbons with layers of different width...
We apply density functional theory to study the optical properties of armchair graphene nanoribbons ...
We investigate from first principles the optoelectronic properties of nanometer-sized armchair graph...
The bottom-up fabrication of graphene nanoribbons (GNRs) has opened new opportunities to specificall...
We present a systematic density functional theory study of the electronic properties, optical spectr...
We present some computational simulations of graphene-based nanoribbons with a number of half-twists...
By mixing pure precursor monomers and nitrogen-doped equivalents, atomically sharp wiggle-edged hete...
Armchair-edged narrow graphene nanoribbons (GNRs) are modelled by semi-empirical Hartree–Fock based ...
We present calculations of the optical absorption and electroabsorption spectra of graphene nanoribb...
We explore the implementation of specific optical properties of armchair graphene nanoribbons (AGNRs...
Narrow graphene nanoribbons exhibit substantial electronic bandgaps and optical properties fundament...
The search for new optical materials capable of absorbing light in the frequency range from visible ...
The search for new optical materials capable of absorbing light in the frequency range from visible ...
We present an analytical tight-binding theory of the optical properties of graphene nanoribbons with...
We report on excitonic spectra of armchair graphene nanoribbons (AGNRs) obtained from a full many-bo...