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Out-of-equilibrium optomechanical resonance self-excitation

  • The fundamental sensitivity limit of atomic force microscopy is strongly correlated to the thermal noise of cantilever oscillation. A method to suppress this unwanted noise is to reduce the bandwidth of the measurement, but this approach is limited by the speed of the measurement and the width of the cantilever resonance, commonly defined through the quality factor Q. However, it has been shown that optomechanical resonances in interferometers might affect cantilever oscillations resulting in an effective quality factor Q(eff). When the laser power is sufficiently increased cantilever oscillations might even reach the regime of self-oscillation. In this self-oscillation state, the noise of the system is partially determined by the interaction with laser light far from equilibrium. Here, we show and discuss how tuning of laser power leads to nonlinear optomechanical effects that can dramatically increase the effective quality factor of the cantilever leading to out-of-equilibrium noise. We model the effects using a fourth orderThe fundamental sensitivity limit of atomic force microscopy is strongly correlated to the thermal noise of cantilever oscillation. A method to suppress this unwanted noise is to reduce the bandwidth of the measurement, but this approach is limited by the speed of the measurement and the width of the cantilever resonance, commonly defined through the quality factor Q. However, it has been shown that optomechanical resonances in interferometers might affect cantilever oscillations resulting in an effective quality factor Q(eff). When the laser power is sufficiently increased cantilever oscillations might even reach the regime of self-oscillation. In this self-oscillation state, the noise of the system is partially determined by the interaction with laser light far from equilibrium. Here, we show and discuss how tuning of laser power leads to nonlinear optomechanical effects that can dramatically increase the effective quality factor of the cantilever leading to out-of-equilibrium noise. We model the effects using a fourth order nonlinearity of the damping coefficient. Published under an exclusive license by AIP Publishing.show moreshow less

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Author details:Peter MildeORCiDGND, Malte Langenhorst, Hendrik HölscherORCiDGND, Jens Rottmann-MatthesORCiDGND, Dirk HundertmarkORCiDGND, Lukas EngORCiDGND, Regina Hoffmann-VogelORCiD
DOI:https://doi.org/10.1063/5.0054509
ISSN:0021-8979
ISSN:1089-7550
Title of parent work (English):Journal of applied physics
Publisher:American Institute of Physics
Place of publishing:Melville
Publication type:Article
Language:English
Date of first publication:2021/07/16
Publication year:2021
Release date:2024/07/11
Tag:Atomic force microscopy; Electrical properties and parameters; Electronic noise; Hooke's law; Interferometry; Noise floor; Optical resonators; Signal processing; Thermo optic effects; Ultra-high vacuum
Volume:130
Issue:3
Article number:035303
Number of pages:10
Funding institution:German Science Foundation (DFG)German Research Foundation (DFG) [EN 434/40-1, MI 2004/3-1, EN 434/38-1]; DFGGerman Research Foundation (DFG)European Commission [(CRC) 1173]; European Research Council through the Starting Grant NANOCONTACTS [239838]; Ministry of Science and Arts, Baden-Wurttemberg; DFG through a Heisenberg fellowshipGerman Research Foundation (DFG)
Organizational units:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Physik und Astronomie
DDC classification:5 Naturwissenschaften und Mathematik / 53 Physik / 530 Physik
Peer review:Referiert
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