TY - JOUR
T1 - Bright Electrically Controllable Quantum-Dot-Molecule Devices Fabricated by In Situ Electron-Beam Lithography
AU - Schall, Johannes
AU - Deconinck, Marielle
AU - Bart, Nikolai
AU - Florian, Matthias
AU - von Helversen, Martin
AU - Dangel, Christian
AU - Schmidt, Ronny
AU - Bremer, Lucas
AU - Bopp, Frederik
AU - Hüllen, Isabell
AU - Gies, Christopher
AU - Reuter, Dirk
AU - Wieck, Andreas D.
AU - Rodt, Sven
AU - Finley, Jonathan J.
AU - Jahnke, Frank
AU - Ludwig, Arne
AU - Reitzenstein, Stephan
N1 - Publisher Copyright:
© 2021 The Authors. Advanced Quantum Technologies published by Wiley-VCH GmbH
PY - 2021/6
Y1 - 2021/6
N2 - Self-organized semiconductor quantum dots represent almost ideal two-level systems, which have strong potential to applications in photonic quantum technologies. For instance, they can act as emitters in close-to-ideal quantum light sources. Coupled quantum dot systems with significantly increased functionality are potentially of even stronger interest since they can be used to host ultra-stable singlet-triplet spin qubits for efficient spin-photon interfaces and for deterministic photonic 2D cluster-state generation. An advanced quantum dot molecule (QDM) device is realized and excellent optical properties are demonstrated. The device includes electrically controllable QDMs based on stacked quantum dots in a pin-diode structure. The QDMs are deterministically integrated into a photonic structure with a circular Bragg grating using in situ electron beam lithography. A photon extraction efficiency of up to (24 ± 4)% is measured in good agreement with numerical simulations. The coupling character of the QDMs is clearly demonstrated by bias voltage dependent spectroscopy that also controls the orbital couplings of the QDMs and their charge state in quantitative agreement with theory. The QDM devices show excellent single-photon emission properties with a multi-photon suppression of (Formula presented.). These metrics make the developed QDM devices attractive building blocks for use in future photonic quantum networks using advanced nanophotonic hardware.
AB - Self-organized semiconductor quantum dots represent almost ideal two-level systems, which have strong potential to applications in photonic quantum technologies. For instance, they can act as emitters in close-to-ideal quantum light sources. Coupled quantum dot systems with significantly increased functionality are potentially of even stronger interest since they can be used to host ultra-stable singlet-triplet spin qubits for efficient spin-photon interfaces and for deterministic photonic 2D cluster-state generation. An advanced quantum dot molecule (QDM) device is realized and excellent optical properties are demonstrated. The device includes electrically controllable QDMs based on stacked quantum dots in a pin-diode structure. The QDMs are deterministically integrated into a photonic structure with a circular Bragg grating using in situ electron beam lithography. A photon extraction efficiency of up to (24 ± 4)% is measured in good agreement with numerical simulations. The coupling character of the QDMs is clearly demonstrated by bias voltage dependent spectroscopy that also controls the orbital couplings of the QDMs and their charge state in quantitative agreement with theory. The QDM devices show excellent single-photon emission properties with a multi-photon suppression of (Formula presented.). These metrics make the developed QDM devices attractive building blocks for use in future photonic quantum networks using advanced nanophotonic hardware.
KW - circular Bragg gratings
KW - determinsitic device fabrication
KW - quantum dot molecules
KW - quantum light sources
KW - quantum memory
UR - http://www.scopus.com/inward/record.url?scp=85105012194&partnerID=8YFLogxK
U2 - 10.1002/qute.202100002
DO - 10.1002/qute.202100002
M3 - Article
AN - SCOPUS:85105012194
SN - 2511-9044
VL - 4
JO - Advanced Quantum Technologies
JF - Advanced Quantum Technologies
IS - 6
M1 - 2100002
ER -