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Nonreciprocal Dissipation Engineering via Strong Coupling with a Continuum of Modes

  • Yishu Zhou
  • , Freek Ruesink
  • , Shai Gertler
  • , Haotian Cheng
  • , Margaret Pavlovich
  • , Eric Kittlaus
  • , Andrew L. Starbuck
  • , Andrew J. Leenheer
  • , Andrew T. Pomerene
  • , Douglas C. Trotter
  • , Christina Dallo
  • , Katherine M. Musick
  • , Eduardo Garcia
  • , Robert Reyna
  • , Andrew L. Holterhoff
  • , Michael Gehl
  • , Ashok Kodigala
  • , John Bowers
  • , Matt Eichenfield
  • , Nils T. Otterstrom
  • Anthony L. Lentine, Peter Rakich

Research output: Contribution to journalArticlepeer-review

38 Scopus citations

Abstract

Optical nonreciprocity plays a key role in almost every optical system, directing light flow and protecting optical components from backscattered light. Controllable forms of on-chip nonreciprocity are needed for the robust operation of increasingly sophisticated photonic integrated circuits (PICs) in the context of classical and quantum computation, networking, communications, and sensing. However, it has been challenging to achieve wideband, low-loss optical nonreciprocity on-chip. In this paper, we demonstrate strong coupling and Rabi-like energy exchange between photonic bands, possessing a continuum of modes, to unlock nonreciprocity and frequency translation over wide optical bandwidths in silicon. Using a traveling-wave phonon field to drive indirect interband photonic transitions, we demonstrate band hybridization that enables an intriguing form of nonreciprocal dissipation engineering. Using the converted mode to create a nonreciprocal dissipation channel, we demonstrate a frequency-neutral, low-loss (less than 1 dB) isolator with high nonreciprocal contrast (more than 14 dB) and broad operating bandwidth (more than 59 GHz). Additionally, through the implementation of complete interband conversion, we demonstrate a high extinction (more than 55 dB) optical frequency translation operation with near-unity efficiency.

Original languageEnglish
Article number021002
JournalPhysical Review X
Volume14
Issue number2
DOIs
StatePublished - Apr 2024
Externally publishedYes

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