Tightly bound excitons in monolayer semiconductors represent a versatile platform to study two-dimensional propagation of neutral quasiparticles. Their intrinsic properties, however, can be severely obscured by spatial energy fluctuations due to a high sensitivity to the immediate environment. Here, we take advantage of the encapsulation of individual layers in hexagonal boron nitride to strongly suppress environmental disorder. Diffusion of excitons is then directly monitored using time and spatially resolved emission microscopy at ambient conditions. We consistently find very efficient propagation with linear diffusion coefficients up to 10 cm(2)/s, corresponding to room-temperature effective mobilities as high as 400 cm(2)/Vs as well as ...
Long-range and fast transport of coherent excitons is important for the development of high-speed ex...
The explosive energy demand by the communication and information technologies sector in the age of a...
In the strong light-matter coupling regime realized e.g. by integrating semiconductors into optical ...
Tightly bound excitons in monolayer semiconductors represent a versatile platform to study two-dimen...
We experimentally demonstrate time-resolved exciton propagation in a monolayer semiconductor at cryo...
We directly monitor exciton propagation in freestanding and SiO2-supported WS2 monolayers through sp...
While exciton relaxation in monolayers of transition metal dichalcogenides (TMDs) has been intensive...
The focus of this piece of work lies on the investigation of fundamental properties of tightly bound...
Atomically thin semiconductors provide an excellent platform to study intriguing many-particle physi...
Interlayer exciton diffusion is studied in atomically-reconstructed MoSe2/WSe2 heterobilayers with s...
Atomically thin semiconductors such as transition metal dichalcogenide (TMD) monolayers exhibit a ve...
Two-dimensional semiconductors such as monolayer transition metal dichalcogenides (TMDCs) evolved to...
International audienceWe have combined spatially resolved steady-state micro-photoluminescence with ...
In the strong light-matter coupling regime realized, e.g., by integrating semiconductors into optica...
Long-range and fast transport of coherent excitons is important for the development of high-speed ex...
Long-range and fast transport of coherent excitons is important for the development of high-speed ex...
The explosive energy demand by the communication and information technologies sector in the age of a...
In the strong light-matter coupling regime realized e.g. by integrating semiconductors into optical ...
Tightly bound excitons in monolayer semiconductors represent a versatile platform to study two-dimen...
We experimentally demonstrate time-resolved exciton propagation in a monolayer semiconductor at cryo...
We directly monitor exciton propagation in freestanding and SiO2-supported WS2 monolayers through sp...
While exciton relaxation in monolayers of transition metal dichalcogenides (TMDs) has been intensive...
The focus of this piece of work lies on the investigation of fundamental properties of tightly bound...
Atomically thin semiconductors provide an excellent platform to study intriguing many-particle physi...
Interlayer exciton diffusion is studied in atomically-reconstructed MoSe2/WSe2 heterobilayers with s...
Atomically thin semiconductors such as transition metal dichalcogenide (TMD) monolayers exhibit a ve...
Two-dimensional semiconductors such as monolayer transition metal dichalcogenides (TMDCs) evolved to...
International audienceWe have combined spatially resolved steady-state micro-photoluminescence with ...
In the strong light-matter coupling regime realized, e.g., by integrating semiconductors into optica...
Long-range and fast transport of coherent excitons is important for the development of high-speed ex...
Long-range and fast transport of coherent excitons is important for the development of high-speed ex...
The explosive energy demand by the communication and information technologies sector in the age of a...
In the strong light-matter coupling regime realized e.g. by integrating semiconductors into optical ...