Mesa-top quantum dot single photon emitter arrays: growth, optical characteristics, and the simulated optical response of integrated dielectric nanoantenna-waveguide systems
Jiefei Zhang, Swarnabha Chattaraj, Siyuan Lu, Anupam Madhukar

TL;DR
This paper presents the growth, optical characterization, and simulation of integrated quantum dot single photon emitter arrays coupled with dielectric nanoantenna-waveguide systems for nanophotonic quantum information processing.
Contribution
It introduces a new integrated system combining quantum dot SPS arrays with dielectric nanoantenna-waveguide structures, supported by experimental and theoretical analysis.
Findings
High spectral uniformity and single photon emission at 8 K
Successful integration of SPS arrays with dielectric light manipulation units
Simulated optical response shows enhanced emission and guiding properties
Abstract
Nanophotonic quantum information processing systems require spatially ordered, spectrally uniform single photon sources (SPSs) integrated on-chip with co-designed light manipulating elements providing emission rate enhancement, emitted photon guidance, and lossless propagation. Towards this goal, we consider systems comprising an SPS array with each SPS coupled to a dielectric building block (DBB) based multifunctional light manipulation unit (LMU). For the SPS array, we report triggered single photon emission from GaAs(001)/InGaAs single quantum dots (SQDs) grown selectively on top of nanomesas using the approach of substrate-encoded size-reducing epitaxy (SESRE). Systematic temperature and power dependent photoluminescence (PL), PL excitation, time-resolved PL, and emission statistics studies reveal high spectral uniformity and single photon emission at 8 K with g(2)(0) of 0.19…
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