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Converting microwave and telecom photons with a silicon photonic nanomechanical interface.
Arnold, G; Wulf, M; Barzanjeh, S; Redchenko, E S; Rueda, A; Hease, W J; Hassani, F; Fink, J M.
Affiliation
  • Arnold G; Institute of Science and Technology Austria, Am Campus 1, 3400, Klosterneuburg, Austria.
  • Wulf M; Institute of Science and Technology Austria, Am Campus 1, 3400, Klosterneuburg, Austria.
  • Barzanjeh S; Institute of Science and Technology Austria, Am Campus 1, 3400, Klosterneuburg, Austria.
  • Redchenko ES; Institute for Quantum Science and Technology (IQST), University of Calgary, Calgary, AB, Canada.
  • Rueda A; Institute of Science and Technology Austria, Am Campus 1, 3400, Klosterneuburg, Austria.
  • Hease WJ; Institute of Science and Technology Austria, Am Campus 1, 3400, Klosterneuburg, Austria.
  • Hassani F; Institute of Science and Technology Austria, Am Campus 1, 3400, Klosterneuburg, Austria.
  • Fink JM; Institute of Science and Technology Austria, Am Campus 1, 3400, Klosterneuburg, Austria.
Nat Commun ; 11(1): 4460, 2020 Sep 08.
Article in En | MEDLINE | ID: mdl-32901014
ABSTRACT
Practical quantum networks require low-loss and noise-resilient optical interconnects as well as non-Gaussian resources for entanglement distillation and distributed quantum computation. The latter could be provided by superconducting circuits but existing solutions to interface the microwave and optical domains lack either scalability or efficiency, and in most cases the conversion noise is not known. In this work we utilize the unique opportunities of silicon photonics, cavity optomechanics and superconducting circuits to demonstrate a fully integrated, coherent transducer interfacing the microwave X and the telecom S bands with a total (internal) bidirectional transduction efficiency of 1.2% (135%) at millikelvin temperatures. The coupling relies solely on the radiation pressure interaction mediated by the femtometer-scale motion of two silicon nanobeams reaching a Vπ as low as 16 µV for sub-nanowatt pump powers. Without the associated optomechanical gain, we achieve a total (internal) pure conversion efficiency of up to 0.019% (1.6%), relevant for future noise-free operation on this qubit-compatible platform.

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Nat Commun Journal subject: BIOLOGIA / CIENCIA Year: 2020 Document type: Article Affiliation country:

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Nat Commun Journal subject: BIOLOGIA / CIENCIA Year: 2020 Document type: Article Affiliation country: