Observation of ultrafast interfacial Meitner-Auger energy transfer in a Van der Waals heterostructure

Author:

Dong ShuoORCID,Beaulieu Samuel,Selig Malte,Rosenzweig PhilippORCID,Christiansen Dominik,Pincelli TommasoORCID,Dendzik MaciejORCID,Ziegler Jonas D.,Maklar JulianORCID,Xian R. PatrickORCID,Neef AlexanderORCID,Mohammed Avaise,Schulz Armin,Stadler Mona,Jetter Michael,Michler PeterORCID,Taniguchi TakashiORCID,Watanabe KenjiORCID,Takagi Hidenori,Starke UlrichORCID,Chernikov AlexeyORCID,Wolf MartinORCID,Nakamura Hiro,Knorr Andreas,Rettig LaurenzORCID,Ernstorfer RalphORCID

Abstract

AbstractAtomically thin layered van der Waals heterostructures feature exotic and emergent optoelectronic properties. With growing interest in these novel quantum materials, the microscopic understanding of fundamental interfacial coupling mechanisms is of capital importance. Here, using multidimensional photoemission spectroscopy, we provide a layer- and momentum-resolved view on ultrafast interlayer electron and energy transfer in a monolayer-WSe2/graphene heterostructure. Depending on the nature of the optically prepared state, we find the different dominating transfer mechanisms: while electron injection from graphene to WSe2 is observed after photoexcitation of quasi-free hot carriers in the graphene layer, we establish an interfacial Meitner-Auger energy transfer process following the excitation of excitons in WSe2. By analysing the time-energy-momentum distributions of excited-state carriers with a rate-equation model, we distinguish these two types of interfacial dynamics and identify the ultrafast conversion of excitons in WSe2 to valence band transitions in graphene. Microscopic calculations find interfacial dipole-monopole coupling underlying the Meitner-Auger energy transfer to dominate over conventional Förster- and Dexter-type interactions, in agreement with the experimental observations. The energy transfer mechanism revealed here might enable new hot-carrier-based device concepts with van der Waals heterostructures.

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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