TY - JOUR
T1 - Bright excitonic multiplexing mediated by dark exciton transition in two-dimensional TMDCs at room temperature
AU - Katznelson, Shaul
AU - Cohn, Bar
AU - Sufrin, Shmuel
AU - Amit, Tomer
AU - Mukherjee, Subhrajit
AU - Kleiner, Vladimir
AU - Mohapatra, Pranab
AU - Patsha, Avinash
AU - Ismach, Ariel
AU - Refaely-Abramson, Sivan
AU - Hasman, Erez
AU - Koren, Elad
PY - 2022/3/7
Y1 - 2022/3/7
N2 - 2D-semiconductors with strong light-matter interaction are attractive materials for integrated and tunable optical devices. Here, we demonstrate room-temperature wavelength multiplexing of the two-primary bright excitonic channels (Ab-, Bb-) in monolayer transition metal dichalcogenides (TMDs) arising from a dark exciton mediated transition. We present how tuning dark excitons via an out-of-plane electric field cedes the system equilibrium from one excitonic channel to the other, encoding the field polarization into wavelength information. In addition, we demonstrate how such exciton multiplexing is dictated by thermal-scattering by performing temperature dependent photoluminescence measurements. Finally, we demonstrate experimentally and theoretically how excitonic mixing can explain preferable decay through dark states in MoX2 in comparison with WX2 monolayers. Such field polarization-based manipulation of excitonic transitions can pave the way for novel photonic device architectures.
AB - 2D-semiconductors with strong light-matter interaction are attractive materials for integrated and tunable optical devices. Here, we demonstrate room-temperature wavelength multiplexing of the two-primary bright excitonic channels (Ab-, Bb-) in monolayer transition metal dichalcogenides (TMDs) arising from a dark exciton mediated transition. We present how tuning dark excitons via an out-of-plane electric field cedes the system equilibrium from one excitonic channel to the other, encoding the field polarization into wavelength information. In addition, we demonstrate how such exciton multiplexing is dictated by thermal-scattering by performing temperature dependent photoluminescence measurements. Finally, we demonstrate experimentally and theoretically how excitonic mixing can explain preferable decay through dark states in MoX2 in comparison with WX2 monolayers. Such field polarization-based manipulation of excitonic transitions can pave the way for novel photonic device architectures.
UR - http://www.scopus.com/inward/record.url?scp=85125883431&partnerID=8YFLogxK
U2 - 10.1039/d1mh01186c
DO - 10.1039/d1mh01186c
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C2 - 35083477
AN - SCOPUS:85125883431
SN - 2051-6347
VL - 9
SP - 1089
EP - 1098
JO - Materials Horizons
JF - Materials Horizons
IS - 3
ER -