Published July 2020 | Version Published + Submitted
Journal Article Open

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

  • 1. ROR icon California Institute of Technology
  • 2. ROR icon Institute of Science and Technology Austria

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.

Additional Information

© 2020 IOP Publishing Ltd. Original content from this work may be used under the terms of the Creative Commons Attribution 4.0 licence. Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI. Received 27 November 2019; Accepted 28 April 2020; Accepted Manuscript online 28 April 2020; Published 25 May 2020. We thank Lukas Heinzle, Joe Redford, Marcelo Davanço, Kartik Srinivasan and Greg McCabe for help in the early parts of this work and Shabir Barzanjeh for discussions. This research was supported by the DARPA MESO program, the ARO-MURI Quantum Opto-Mechanics with Atoms and Nanostructured Diamond (Grant N00014-15-1-2761) and the Institute for Quantum Information and Matter, an NSF Physics Frontiers Center (Grant PHY-1125565) with support of the Gordon and Betty Moore Foundation. AP was supported by a Marie Curie International Outgoing Fellowship within the 7th European Community Framework Program, NEMO (GA 298861). JMF acknowledges support from the European Research Council under Grant agreement number 758053 (ERC StG QUNNECT), the Austrian Science Fund (FWF) through BeyondC (F71), an NOMIS Foundation Research Grant, and the EU's Horizon 2020 Research and Innovation Program under Grant agreement number 732894 (FET Proactive HOT).

Attached Files

Published - Fink_2020_Quantum_Sci._Technol._5_034011.pdf

Submitted - 1911.12450.pdf

Files

1911.12450.pdf

Files (7.4 MB)

Name Size
md5:874395d7cb3290cc58794c37a6ecf6b0
4.8 MB Preview Download
md5:33da3a5b8ec08bf3a96d0d004faf87e8
2.6 MB Preview Download

Additional details

Additional titles

Alternative title
Efficient microwave frequency conversion mediated by the vibrational motion of a silicon nitride nanobeam oscillator

Identifiers

Eprint ID
102975
Resolver ID
CaltechAUTHORS:20200504-123037615

Related works

Funding

Defense Advanced Research Projects Agency (DARPA)
Army Research Office (ARO)
Office of Naval Research (ONR)
N00014-15-1-2761
Institute for Quantum Information and Matter (IQIM)
NSF
PHY-1125565
Gordon and Betty Moore Foundation
Marie Curie Fellowship
GA 298861
European Research Council (ERC)
758053
FWF Der Wissenschaftsfonds
NOMIS Foundation
European Research Council (ERC)
732894

Dates

Created
2020-05-04
Created from EPrint's datestamp field
Updated
2021-11-16
Created from EPrint's last_modified field