We show by first-principles calculations that, due to depressed screening and enhanced two-dimensional confinement, excitonic resonances with giant oscillator strength appear in hydrogenated Si and Ge layers, which qualitatively and quantitatively differ from those of graphane. Their large exciton binding energies and oscillator strengths make them promising for observation of novel physical effects and application in optoelectronic devices on the nanoscale. Copyright (C) EPLA, 201
Single-layer transition metal dichalcogenides are at the center of an ever increasing research effor...
Atomically thin materials such as graphene and monolayer transition metal dichalcogenides (TMDs) exh...
Two-dimensional materials are one of the most active areas of nanomaterials research. Here we report...
We show by first-principles calculations that, due to depressed screening and enhanced two-dimension...
The fascinating electronic and optoelectronic properties of freestanding graphene and the possible i...
International audienceLow-dimensional materials differ from their bulk counterpart in many respects....
The emergence of graphene optoelectronics has stimulated the development of near-transparent two-dim...
External fields are a powerful tool to probe optical excitations in a material. The linear energy sh...
Two-dimensional materials are one of the most active areas of nanomaterials research. Here we report...
Using first-principles GW Bethe-Salpeter equation calculations and the k . p theory, we unambiguousl...
International audienceSecond Harmonic Generation (SHG) of single-layer monochalcogenides, such as Ga...
Germanene is a novel 2D material with promising optoelectronic properties, tuning of which is to be ...
International audienceBoron nitride single layer belongs to the family of 2D materials whose optical...
Two-dimensional materials are ideal platforms to explore new physical phenomena and reveal unique op...
4 pages, 4 figuresWe present ab initio many-body calculations of the optical absorption in bulk grap...
Single-layer transition metal dichalcogenides are at the center of an ever increasing research effor...
Atomically thin materials such as graphene and monolayer transition metal dichalcogenides (TMDs) exh...
Two-dimensional materials are one of the most active areas of nanomaterials research. Here we report...
We show by first-principles calculations that, due to depressed screening and enhanced two-dimension...
The fascinating electronic and optoelectronic properties of freestanding graphene and the possible i...
International audienceLow-dimensional materials differ from their bulk counterpart in many respects....
The emergence of graphene optoelectronics has stimulated the development of near-transparent two-dim...
External fields are a powerful tool to probe optical excitations in a material. The linear energy sh...
Two-dimensional materials are one of the most active areas of nanomaterials research. Here we report...
Using first-principles GW Bethe-Salpeter equation calculations and the k . p theory, we unambiguousl...
International audienceSecond Harmonic Generation (SHG) of single-layer monochalcogenides, such as Ga...
Germanene is a novel 2D material with promising optoelectronic properties, tuning of which is to be ...
International audienceBoron nitride single layer belongs to the family of 2D materials whose optical...
Two-dimensional materials are ideal platforms to explore new physical phenomena and reveal unique op...
4 pages, 4 figuresWe present ab initio many-body calculations of the optical absorption in bulk grap...
Single-layer transition metal dichalcogenides are at the center of an ever increasing research effor...
Atomically thin materials such as graphene and monolayer transition metal dichalcogenides (TMDs) exh...
Two-dimensional materials are one of the most active areas of nanomaterials research. Here we report...