Optomechanical synchronization across multi-octave frequency spans.

Nat Commun

Applied Physics Department, Gleb Wataghin Physics Institute, University of Campinas, Campinas, SP, Brazil.

Published: September 2021

AI Article Synopsis

  • Researchers are investigating synchronization in oscillator microsystems to enhance our understanding of networks and signal processing, focusing on cavity optomechanical devices.
  • The study demonstrates synchronization in a silicon-nitride optomechanical oscillator, achieving entrainment at frequencies up to the fourth harmonic of 32 MHz.
  • The team also successfully created a purely optomechanical RF frequency divider that can reduce frequencies by a 4:1 ratio, paving the way for advancements in frequency synthesizers and sensing technology.

Article Abstract

Experimental exploration of synchronization in scalable oscillator microsystems has unfolded a deeper understanding of networks, collective phenomena, and signal processing. Cavity optomechanical devices have played an important role in this scenario, with the perspective of bridging optical and radio frequencies through nonlinear classical and quantum synchronization concepts. In its simplest form, synchronization occurs when an oscillator is entrained by a signal with frequency nearby the oscillator's tone, and becomes increasingly challenging as their frequency detuning increases. Here, we experimentally demonstrate entrainment of a silicon-nitride optomechanical oscillator driven up to the fourth harmonic of its 32 MHz fundamental frequency. Exploring this effect, we also experimentally demonstrate a purely optomechanical RF frequency divider, where we performed frequency division up to a 4:1 ratio, i.e., from 128 MHz to 32 MHz. Further developments could harness these effects towards frequency synthesizers, phase-sensitive amplification and nonlinear sensing.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8463541PMC
http://dx.doi.org/10.1038/s41467-021-25884-xDOI Listing

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