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Enabling remote quantum emission in 2D semiconductors via porous metallic networks. | LitMetric

AI Article Synopsis

  • - The study investigates how two-dimensional crystal (2DC) overlayers affect the recrystallization of thick metal films, particularly gold (Au), leading to a unique porous metallic network structure that can enhance optical properties.
  • - Through annealing 2DC/Au films on silicon oxide (SiO), the gold films develop a textured and oriented structure that allows the 2DC material to interact effectively with the metal, optimizing the coupling of surface plasmon-polaritons (SPPs) with photon emission.
  • - The findings demonstrate the ability to excite single-photon emitters (SPEs) in the porous network from a distance of 17 μm, indicating significant potential for future applications in quantum optics and phot

Article Abstract

Here we report how two-dimensional crystal (2DC) overlayers influence the recrystallization of relatively thick metal films and the subsequent synergetic benefits this provides for coupling surface plasmon-polaritons (SPPs) to photon emission in 2D semiconductors. We show that annealing 2DC/Au films on SiO results in a reverse epitaxial process where initially nanocrystalline Au films gain texture, crystallographically orient with the 2D crystal overlayer, and form an oriented porous metallic network (OPEN) structure in which the 2DC can suspend above or coat the inside of the metal pores. Both laser excitation and exciton recombination in the 2DC semiconductor launch propagating SPPs in the OPEN film. Energy in-/out- coupling occurs at metal pore sites, alleviating the need for dielectric spacers between the metal and 2DC layer. At low temperatures, single-photon emitters (SPEs) are present across an OPEN-WSe film, and we demonstrate remote SPP-mediated excitation of SPEs at a distance of 17 μm.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6946668PMC
http://dx.doi.org/10.1038/s41467-019-13857-0DOI Listing

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