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Efficient microwave frequency conversion mediated by a photonics compatible silicon nitride nanobeam oscillator

Academic Article
Publication Date:
2020
abstract:
Microelectromechanical systems and integrated photonics provide the basis for many reliable and compact circuit elements in modern communication systems. Electro-opto-mechanical devices are currently one of the leading approaches to realize ultra-sensitive, low-loss transducers for an emerging quantum information technology. Here we present an on-chip microwave frequency converter based on a planar aluminum on silicon nitride platform that is compatible with slot-mode coupled photonic crystal cavities. We show efficient frequency conversion between two propagating microwave modes mediated by the radiation pressure interaction with a metalized dielectric nanobeam oscillator. We achieve bidirectional coherent conversion with a total device efficiency of up to ~ 60%, a dynamic range of 2 × 109 photons/s and an instantaneous bandwidth of up to 1.7 kHz. A high fidelity quantum state transfer would be possible if the drive dependent output noise of currently ~ 14 photons · s-1· Hz-1 is further reduced. Such a silicon nitride based transducer is in-situ reconfigurable and could be used for on-chip classical and quantum signal routing and filtering, both for microwave and hybrid microwave-optical applications.
Iris type:
01.01 Articolo in rivista
Keywords:
superconducting circuits; electromechanics; optomechanics; MEMS; frequency conversion; hybrid devices; silicon nitride membranes
List of contributors:
Pitanti, Alessandro
Authors of the University:
PITANTI ALESSANDRO
Handle:
https://iris.cnr.it/handle/20.500.14243/383802
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