Strain-Tunable Quantum Integrated Photonics
Author(s) -
Ali W. Elshaari,
Efe Büyüközer,
Iman Esmaeil Zadeh,
Thomas Lettner,
Peng Zhao,
Eva Schöll,
Samuel Gyger,
Michael E. Reimer,
Dan Dalacu,
Philip J. Poole,
Klaus D. Jöns,
Val Zwiller
Publication year - 2018
Publication title -
nano letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 4.853
H-Index - 488
eISSN - 1530-6992
pISSN - 1530-6984
DOI - 10.1021/acs.nanolett.8b03937
Subject(s) - photonics , optoelectronics , photonic integrated circuit , quantum technology , quantum dot , qubit , quantum , photon , materials science , physics , nanotechnology , open quantum system , optics , quantum mechanics
Semiconductor quantum dots are crucial parts of the photonic quantum technology toolbox because they show excellent single-photon emission properties in addition to their potential as solid-state qubits. Recently, there has been an increasing effort to deterministically integrate single semiconductor quantum dots into complex photonic circuits. Despite rapid progress in the field, it remains challenging to manipulate the optical properties of waveguide-integrated quantum emitters in a deterministic, reversible, and nonintrusive manner. Here we demonstrate a new class of hybrid quantum photonic circuits combining III-V semiconductors, silicon nitride, and piezoelectric crystals. Using a combination of bottom-up, top-down, and nanomanipulation techniques, we realize strain tuning of a selected, waveguide-integrated, quantum emitter and a planar integrated optical resonator. Our findings are an important step toward realizing reconfigurable quantum-integrated photonics, with full control over the quantum sources and the photonic circuit.
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