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Nanoscale trapping of interlayer excitons in a 2D semiconductor heterostructure

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arxiv 2103.08838 v2 pith:AVMLQS2Z submitted 2021-03-16 cond-mat.mes-hall

Nanoscale trapping of interlayer excitons in a 2D semiconductor heterostructure

classification cond-mat.mes-hall
keywords quantumdeterministicelectricexcitonsfieldsingletrappingenergy
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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For quantum technologies based on single excitons and spins, the deterministic placement and control of a single exciton is a long-standing goal. MoSe2-WSe2 heterostructures host spatially indirect interlayer excitons (IXs) which exhibit highly tunable energies and unique spin-valley physics, making them promising candidates for quantum information processing. Previous IX trapping approaches involving moir\'e superlattices and nanopillars do not meet the quantum technology requirements of deterministic placement and energy tunability. Here, we use a nanopatterned graphene gate to create a sharply varying electric field in close proximity to a MoSe2-WSe2 heterostructure. The dipole interaction between the IX and the electric field creates an ~20 nm trap. The trapped IXs show the predicted electric field dependent energy, saturation at low excitation power, and increased lifetime, all signatures of strong spatial confinement. The demonstrated architecture is a crucial step towards deterministic trapping of single IXs, which has broad applications to scalable quantum technologies.

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