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Exciton Propagation and Halo Formation in Two-Dimensional Materials.
Perea-Causín, Raül; Brem, Samuel; Rosati, Roberto; Jago, Roland; Kulig, Marvin; Ziegler, Jonas D; Zipfel, Jonas; Chernikov, Alexey; Malic, Ermin.
Affiliation
  • Perea-Causín R; Department of Physics , Chalmers University of Technology , 412 96 Gothenburg , Sweden.
  • Brem S; Department of Physics , Chalmers University of Technology , 412 96 Gothenburg , Sweden.
  • Rosati R; Department of Physics , Chalmers University of Technology , 412 96 Gothenburg , Sweden.
  • Jago R; Department of Physics , Chalmers University of Technology , 412 96 Gothenburg , Sweden.
  • Kulig M; Department of Physics , University of Regensburg , Regensburg D-93053 , Germany.
  • Ziegler JD; Department of Physics , University of Regensburg , Regensburg D-93053 , Germany.
  • Zipfel J; Department of Physics , University of Regensburg , Regensburg D-93053 , Germany.
  • Chernikov A; Department of Physics , University of Regensburg , Regensburg D-93053 , Germany.
  • Malic E; Department of Physics , Chalmers University of Technology , 412 96 Gothenburg , Sweden.
Nano Lett ; 19(10): 7317-7323, 2019 10 09.
Article de En | MEDLINE | ID: mdl-31532993
ABSTRACT
The interplay of optics, dynamics, and transport is crucial for the design of novel optoelectronic devices, such as photodetectors and solar cells. In this context, transition-metal dichalcogenides (TMDs) have received much attention. Here, strongly bound excitons dominate optical excitation, carrier dynamics, and diffusion processes. While the first two have been intensively studied, there is a lack of fundamental understanding of nonequilibrium phenomena associated with exciton transport that is of central importance (e.g., for high-efficiency light harvesting). In this work, we provide microscopic insights into the interplay of exciton propagation and many-particle interactions in TMDs. On the basis of a fully quantum mechanical approach and in excellent agreement with photoluminescence measurements, we show that Auger recombination and emission of hot phonons act as a heating mechanism giving rise to strong spatial gradients in excitonic temperature. The resulting thermal drift leads to an unconventional exciton diffusion characterized by spatial exciton halos.
Mots clés

Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Langue: En Journal: Nano Lett Année: 2019 Type de document: Article Pays d'affiliation: Suède

Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Langue: En Journal: Nano Lett Année: 2019 Type de document: Article Pays d'affiliation: Suède
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