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Controlled Interlayer Exciton Ionization in an Electrostatic Trap in Atomically Thin Heterostructures

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arxiv 2311.12941 v2 pith:FREUBYXZ submitted 2023-11-21 cond-mat.mes-hall cond-mat.str-el

Controlled Interlayer Exciton Ionization in an Electrostatic Trap in Atomically Thin Heterostructures

classification cond-mat.mes-hall cond-mat.str-el
keywords trapelectrostaticionizationaboveatomicallydensityexcitonexcitons
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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abstract

Atomically thin semiconductor heterostructures provide a two-dimensional (2D) device platform for creating high densities of cold, controllable excitons. Interlayer excitons (IEs), bound electrons and holes localized to separate 2D quantum well layers, have permanent out-of-plane dipole moments and long lifetimes, allowing their spatial distribution to be tuned on demand. Here, we employ electrostatic gates to trap IEs and control their density. By electrically modulating the IE Stark shift, electron-hole pair concentrations above $2\times10^{12}$ cm$^{-2}$ can be achieved. At this high IE density, we observe an exponentially increasing linewidth broadening indicative of an IE ionization transition, independent of the trap depth. This runaway threshold remains constant at low temperatures, but increases above 20 K, consistent with the quantum dissociation of a degenerate IE gas. Our demonstration of the IE ionization in a tunable electrostatic trap represents an important step towards the realization of dipolar exciton condensates in solid-state optoelectronic devices.

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