Moiré excitons: from programmable quantum emitter arrays to spin-orbit coupled artificial lattices
arXiv:1710.07015 · doi:10.1126/sciadv.1701696
Abstract
Highly uniform and ordered nanodot arrays are crucial for high performance quantum optoelectronics including new semiconductor lasers and single photon emitters, and for synthesizing artificial lattices of interacting quasiparticles towards quantum information processing and simulation of many-body physics. Van der Waals heterostructures of 2D semiconductors are naturally endowed with an ordered nanoscale landscape, i.e. the moiré pattern that laterally modulates electronic and topographic structures. Here we find these moiré effects realize superstructures of nanodot confinements for long-lived interlayer excitons, which can be either electrically or strain tuned from perfect arrays of quantum emitters to excitonic superlattices with giant spin-orbit coupling (SOC). Besides the wide range tuning of emission wavelength, the electric field can also invert the spin optical selection rule of the emitter arrays. This unprecedented control arises from the gauge structure imprinted on exciton wavefunctions by the moiré, which underlies the SOC when hopping couples nanodots into superlattices. We show that the moiré hosts complex-hopping honeycomb superlattices, where exciton bands feature a Dirac node and two Weyl nodes, connected by spin-momentum locked topological edge modes.
To appear in Science Advances
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Cited by in corpus (5)
- Observation of Moiré Excitons in WSe2/WS2 Heterostructure Superlattices
- Resonantly hybridised excitons in moiré superlattices in van der Waals heterostructures
- Theory of optical absorption by interlayer excitons in transition metal dichalcogenide heterobilayers
- Negative Friction Coefficients in Superlubric Graphite-Hexagonal Boron Nitride Heterojunctions
- Highly Valley-Polarized Singlet and Triplet Interlayer Excitons in van der Waals Heterostructure