Injection locking in an optomechanical coherent phonon source

Author:

Arregui Guillermo12,Colombano Martín F.13,Maire Jeremie1,Pitanti Alessandro4,Capuj Néstor E.56,Griol Amadeu7,Martínez Alejandro7ORCID,Sotomayor-Torres Clivia M.18,Navarro-Urrios Daniel3ORCID

Affiliation:

1. Catalan Institute of Nanoscience and Nanotechnology (ICN2), CSIC and The Barcelona Institute of Science and Technology , Campus UAB, Bellaterra , 08193 Barcelona , Spain

2. Dept. de Física , Universitat Autonoma de Barcelona , 08193 Bellaterra , Spain

3. MIND-IN2UB, Departament d’Enginyeria Electrònica i Biomèdica, Facultat de Física , Universitat de Barcelona , Martí i Franquès 1 , 08028 Barcelona , Spain

4. NEST Lab. , CNR - Istituto di Nanoscienze and Scuola Normale Superiore , Piazza San Silvestro 12 , 56217 Pisa , Italy

5. Depto. Física , Universidad de La Laguna , 38200 San Cristóbal de La Laguna , Spain

6. Instituto Universitario de Materiales y Nanotecnología, Universidad de La Laguna , 38071 Santa Cruz de Tenerife , Spain

7. Nanophotonics Technology Center , Universitat Politècnica de Valencia , 46022 Valencia , Spain

8. ICREA - Institució Catalana de Recerca i Estudis Avançats , 08010 Barcelona , Spain

Abstract

Abstract Spontaneous locking of the phase of a coherent phonon source to an external reference is demonstrated in a deeply sideband-unresolved optomechanical system. The high-amplitude mechanical oscillations are driven by the anharmonic modulation of the radiation pressure force that result from an absorption-mediated free-carrier/temperature limit cycle, i.e., self-pulsing. Synchronization is observed when the pump laser driving the mechanical oscillator to a self-sustained state is modulated by a radiofrequency tone. We employ a pump-probe phonon detection scheme based on an independent optical cavity to observe only the mechanical oscillator dynamics. The lock range of the oscillation frequency, i.e., the Arnold tongue, is experimentally determined over a range of external reference strengths, evidencing the possibility to tune the oscillator frequency for a range up to 350 kHz. The stability of the coherent phonon source is evaluated via its phase noise, with a maximum achieved suppression of 44 dBc/Hz at 1 kHz offset for a 100 MHz mechanical resonator. Introducing a weak modulation in the excitation laser reveals as a further knob to trigger, control and stabilize the dynamical solutions of self-pulsing based optomechanical oscillators, thus enhancing their potential as acoustic wave sources in a single-layer silicon platform.

Funder

European Comission

CERCA Programme / Generalitat de Catalunya

Ministerio de Ciencia, Innovación y Universidades

Spanish Research Agency

Publisher

Walter de Gruyter GmbH

Subject

Electrical and Electronic Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials,Biotechnology

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