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Core/Shell-Like Localized Emission at Atomically Thin Semiconductor-Au Interface. | LitMetric

Core/Shell-Like Localized Emission at Atomically Thin Semiconductor-Au Interface.

Nano Lett

Department of Electrical and Systems Engineering, University of Pennsylvania, Philadelphia, Pennsylvania 19104, United States.

Published: April 2024

AI Article Synopsis

  • Localized emission in atomically thin semiconductors, particularly from monolayer WSe nanobubbles, is gaining attention for its potential as a single-photon source.
  • Researchers studied how altering the electronic junction between monolayer WSe and a gold substrate affects emission properties, finding a transition from Schottky to Ohmic junctions.
  • The observed core/shell-like emissions are attributed to strong piezoelectric effects and exciton confinement at the WSe-Au interface, suggesting new ways to control charge confinement and enhance localized emission in semiconductors for applications in nano and quantum photonics.

Article Abstract

Localized emission in atomically thin semiconductors has sparked significant interest as single-photon sources. Despite comprehensive studies into the correlation between localized strain and exciton emission, the impacts of charge transfer on nanobubble emission remains elusive. Here, we report the observation of core/shell-like localized emission from monolayer WSe nanobubbles at room temperature through near-field studies. By altering the electronic junction between monolayer WSe and the Au substrate, one can effectively adjust the semiconductor to metal junction from a Schottky to an Ohmic junction. Through concurrent analysis of topography, potential, tip-enhanced photoluminescence, and a piezo response force microscope, we attribute the core/shell-like emissions to strong piezoelectric potential aided by induced polarity at the WSe-Au Schottky interface which results in spatial confinement of the excitons. Our findings present a new approach for manipulating charge confinement and engineering localized emission within atomically thin semiconductor nanobubbles. These insights hold implications for advancing the nano and quantum photonics with low-dimensional semiconductors.

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Source
http://dx.doi.org/10.1021/acs.nanolett.3c03790DOI Listing

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