English

Single Photon Emission from a Plasmonic Light Source Driven by a Local Field-Induced Coulomb Blockade

Mesoscale and Nanoscale Physics 2020-03-27 v2 Chemical Physics Quantum Physics

Abstract

A hallmark of quantum control is the ability to manipulate quantum emission at the nanoscale. Through scanning tunneling microscopy induced luminescence (STML) we are able to generate plasmonic light originating from inelastic tunneling processes that occur in a few-nanometer thick molecular film of C60_{60} deposited on Ag(111). Single photon emission, not of excitonic origin, occurs with a 1/ee lifetime of a tenth of a nanosecond or less, as shown through Hanbury Brown and Twiss photon intensity interferometry. We have performed tight-binding calculations of the electronic structure for the combined Ag-C60_{60}-tip system and obtained good agreement with experiment. The tunneling happens through electric field induced split-off states below the C60_{60} LUMO band, which leads to a Coulomb blockade effect and single photon emission. The use of split-off states is shown to be a general technique that has special relevance for narrowband materials with a large bandgap.

Keywords

Cite

@article{arxiv.1909.08117,
  title  = {Single Photon Emission from a Plasmonic Light Source Driven by a Local Field-Induced Coulomb Blockade},
  author = {Christopher C. Leon and Olle Gunnarsson and Dimas G. de Oteyza and Anna Rosławska and Pablo Merino and Abhishek Grewal and Klaus Kuhnke and Klaus Kern},
  journal= {arXiv preprint arXiv:1909.08117},
  year   = {2020}
}