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Nature of Long-Lived Moiré Interlayer Excitons in Electrically Tunable MoS 2 /MoSe 2 Heterobilayers.

Evgeny M AlexeevCarola M PurserCarmem M GilardoniJames KerfootHao ChenAlisson R CadoreBárbara L T RosaMatthew S G FeuerEvans JavaryPatrick HaysKenji WatanabeTakashi TaniguchiSeth Ariel TongayDhiren M KaraMete AtatüreAndrea C Ferrari
Published in: Nano letters (2024)
Interlayer excitons in transition-metal dichalcogenide heterobilayers combine high binding energy and valley-contrasting physics with a long optical lifetime and strong dipolar character. Their permanent electric dipole enables electric-field control of the emission energy, lifetime, and location. Device material and geometry impact the nature of the interlayer excitons via their real- and momentum-space configurations. Here, we show that interlayer excitons in MoS 2 /MoSe 2 heterobilayers are formed by charge carriers residing at the Brillouin zone edges, with negligible interlayer hybridization. We find that the moiré superlattice leads to the reversal of the valley-dependent optical selection rules, yielding a positively valued g-factor and cross-polarized photoluminescence. Time-resolved photoluminescence measurements reveal that the interlayer exciton population retains the optically induced valley polarization throughout its microsecond-long lifetime. The combination of a long optical lifetime and valley polarization retention makes MoS 2 /MoSe 2 heterobilayers a promising platform for studying fundamental bosonic interactions and developing excitonic circuits for optical information processing.
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