Single- and narrow-line photoluminescence in a boron nitride-supported MoSe$_2$/graphene heterostructure
Luis E. Parra L\'opez, Lo\"ic Moczko, Joanna Wolff, Aditya Singh,, Etienne Lorchat, Michelangelo Romeo, Takashi Taniguchi, Kenji Watanabe, and, St\'ephane Berciaud

TL;DR
This study characterizes MoSe2 monolayers on hBN capped with graphene, revealing narrow excitonic linewidths, efficient energy transfer, and enhanced valley polarization, advancing understanding of 2D heterostructure optoelectronics.
Contribution
It provides a comprehensive optical characterization of MoSe2/hBN/graphene heterostructures, demonstrating passivation effects, energy transfer dynamics, and valley polarization enhancement.
Findings
Narrow excitonic linewidths approaching homogeneous limit.
Picosecond energy transfer quenches radiative recombination.
Enhanced valley polarization and coherence in heterostructures.
Abstract
Heterostructures made from van der Waals materials provide a template to investigate proximity effects at atomically sharp heterointerfaces. In particular, near-field charge and energy transfer in heterostructures made from semiconducting transition metal dichalcogenides (TMD) have attracted interest to design model 2D "donor-acceptor" systems and new optoelectronic components. Here, using of Raman scattering and photoluminescence spectroscopies, we report a comprehensive characterization of a molybedenum diselenide (MoSe) monolayer deposited onto hexagonal boron nitride (hBN) and capped by mono- and bilayer graphene. Along with the atomically flat hBN susbstrate, a single graphene epilayer is sufficient to passivate the MoSe layer and provides a homogenous environment without the need for an extra capping layer. As a result, we do not observe photo-induced doping in our…
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