AI Article Synopsis

  • * Dark interlayer excitons, typically hard to observe due to their optical inactivity, were successfully visualized in WS/h-BN/WSe heterostructures using advanced microscopy techniques.
  • * The study showed that as excitons transition from a classical state to a quantum degenerate state at lower temperatures, their diffusion rates change in a way explained by a nonlinear quantum diffusion model, highlighting potential applications in quantum computing and precise measurements.

Article Abstract

Moiré superlattices have emerged as an unprecedented manipulation tool for engineering correlated quantum phenomena in van der Waals heterostructures. With moiré potentials as a naturally configurable solid-state that sustains high exciton density, interlayer excitons in transition metal dichalcogenide heterostructures are expected to achieve high-temperature exciton condensation. However, the exciton degeneracy state is usually optically inactive due to the finite momentum of interlayer excitons. Experimental observation of dark interlayer excitons in moiré potentials remains challenging. Here we directly visualize the dark interlayer exciton transport in WS/h-BN/WSe heterostructures using femtosecond transient absorption microscopy. We observe a transition from classical free exciton gas to quantum degeneracy by imaging temperature-dependent exciton transport. Below a critical degeneracy temperature, exciton diffusion rates exhibit an accelerating downward trend, which can be explained well by a nonlinear quantum diffusion model. These results open the door to quantum information processing and high-precision metrology in moiré superlattices.

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Source
http://dx.doi.org/10.1021/acs.nanolett.3c04105DOI Listing

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