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A self-stabilized coherent phonon source driven by optical forces.


ABSTRACT: We report a novel injection scheme that allows for "phonon lasing" in a one-dimensional opto-mechanical photonic crystal, in a sideband unresolved regime and with cooperativity values as low as 10(-2). It extracts energy from a cw infrared laser source and is based on the triggering of a thermo-optical/free-carrier-dispersion self-pulsing limit-cycle, which anharmonically modulates the radiation pressure force. The large amplitude of the coherent mechanical motion acts as a feedback that stabilizes and entrains the self-pulsing oscillations to simple fractions of the mechanical frequency. A manifold of frequency-entrained regions with two different mechanical modes (at 54 and 122?MHz) are observed as a result of the wide tuneability of the natural frequency of the self-pulsing. The system operates at ambient conditions of pressure and temperature in a silicon platform, which enables its exploitation in sensing, intra-chip metrology or time-keeping applications.

SUBMITTER: Navarro-Urrios D 

PROVIDER: S-EPMC4621534 | biostudies-literature | 2015 Oct

REPOSITORIES: biostudies-literature

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A self-stabilized coherent phonon source driven by optical forces.

Navarro-Urrios D D   Capuj N E NE   Gomis-Bresco J J   Alzina F F   Pitanti A A   Griol A A   Martínez A A   Sotomayor Torres C M CM  

Scientific reports 20151027


We report a novel injection scheme that allows for "phonon lasing" in a one-dimensional opto-mechanical photonic crystal, in a sideband unresolved regime and with cooperativity values as low as 10(-2). It extracts energy from a cw infrared laser source and is based on the triggering of a thermo-optical/free-carrier-dispersion self-pulsing limit-cycle, which anharmonically modulates the radiation pressure force. The large amplitude of the coherent mechanical motion acts as a feedback that stabili  ...[more]

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