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Engineering 2D material exciton lineshape with graphene/h-BN encapsulation

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  • معلومة اضافية
    • Contributors:
      Institut des Sciences Moléculaires d'Orsay (ISMO); Université Paris-Saclay-Centre National de la Recherche Scientifique (CNRS); Université Paris-Sud - Paris 11 (UP11)-Centre National de la Recherche Scientifique (CNRS); Laboratoire de Photophysique Moléculaire (PPM); Centre National de la Recherche Scientifique (CNRS); Université Paris-Saclay; ANR-20-CE42-0020,SpinE,Préparation et mesure d'états de spin-valley à l'échelle nanométrique à l'aide d'électrons rapides et de photons(2020)
    • بيانات النشر:
      HAL CCSD
      American Chemical Society
    • الموضوع:
      2023
    • نبذة مختصرة :
      International audience ; Control over the optical properties of atomically thin two-dimensional (2D) layers, including those of transition metal dichalcogenides (TMDs), is needed for future optoelectronic applications. Remarkable advances have been achieved through alloying, chemical and electrical doping, and applied strain. However, the integration of TMDs with other 2D materials in van der Waals heterostructures (vdWHs) to tailor novel functionalities remains largely unexplored. Here, the near-field coupling between TMDs and graphene/graphite is used to engineer the exciton lineshape and charge state. Fano-like asymmetric spectral features are produced in WS$_{2}$, MoSe$_{2}$ and WSe$_{2}$ vdWHs combined with graphene, graphite, or jointly with hexagonal boron nitride (h-BN) as supporting or encapsulating layers. Furthermore, trion emission is suppressed in h-BN encapsulated WSe$_{2}$/graphene with a neutral exciton redshift (44 meV) and binding energy reduction (30 meV). The response of these systems to electron-beam and light probes is well-described in terms of 2D optical conductivities of the involved materials. Beyond fundamental insights into the interaction of TMD excitons with structured environments, this study opens an unexplored avenue toward shaping the spectral profile of narrow optical modes for application in nanophotonic devices.
    • الرقم المعرف:
      10.1021/acs.nanolett.3c05063
    • الدخول الالكتروني :
      https://hal.science/hal-04728893
      https://hal.science/hal-04728893v1/document
      https://hal.science/hal-04728893v1/file/2311.07085v1.pdf
      https://doi.org/10.1021/acs.nanolett.3c05063
    • Rights:
      info:eu-repo/semantics/OpenAccess
    • الرقم المعرف:
      edsbas.E62E6B0C