posted on 2023-11-02, 19:33authored byMichael Seidel, Yuhui Yang, Thorsten Schumacher, Yongheng Huo, Saimon Filipe Covre da Silva, Sven Rodt, Armando Rastelli, Stephan Reitzenstein, Markus Lippitz
Key requirements
for quantum plasmonic nanocircuits are reliable
single-photon sources, high coupling efficiency to the plasmonic structures,
and low propagation losses. Self-assembled epitaxially grown GaAs
quantum dots are close to ideal as stable, bright, and narrowband
single-photon emitters. Likewise, wet-chemically grown monocrystalline
silver nanowires are among the best plasmonic waveguides. However,
large propagation losses of surface plasmons on the high-index GaAs
substrate prevent their direct combination. Here, we show by experiment
and simulation that the best overall performance of the quantum plasmonic
nanocircuit based on these building blocks is achieved in the intermediate
field regime with an additional spacer layer between the quantum dot
and the plasmonic waveguide. High-resolution cathodoluminescence measurements
allow a precise determination of the coupling distance and support
a simple analytical model to explain the overall performance. The
coupling efficiency is increased up to four times by standing wave
interference near the end of the waveguide.