Quantum noise of a Michelson-Sagnac interferometer with translucent mechanical oscillator
arXiv:0912.2603 · doi:10.1103/PhysRevA.81.033849
Abstract
Quantum fluctuations in the radiation pressure of light can excite stochastic motions of mechanical oscillators thereby realizing a linear quantum opto-mechanical coupling. When performing a precise measurement of the position of an oscillator, this coupling results in quantum radiation pressure noise. Up to now this effect has not been observed yet. Generally speaking, the strength of radiation pressure noise increases when the effective mass of the oscillator is decreased or when the power of the reflected light is increased. Recently, extremely light SiN membranes with high mechanical Q-values at room temperature have attracted attention as low thermal noise mechanical oscillators. However, the power reflectance of these membranes is much lower than unity which makes the use of advanced interferometer recycling techniques to amplify the radiation pressure noise in a standard Michelson interferometer inefficient. Here, we propose and theoretically analyze a Michelson-Sagnac interferometer that includes the membrane as a common end mirror for the Michelson interferometer part. In this new topology, both, power- and signal-recycling can be used even if the reflectance of the membrane is much lower than unity. In particular, signal-recycling is a useful tool because it does not involve a power increase at the membrane. We derive the formulas for the quantum radiation pressure noise and the shot-noise of an oscillator position measurement and compare them with theoretical models of the thermal noise of a SiN membrane with a fundamental resonant frequency of 75 kHz and an effective mass of 125 ng. We find that quantum radiation pressure noise should be observable with a power of 1 W at the central beam splitter of the interferometer and a membrane temperature of 1 K.
3 figures
References in corpus (5)
- Strong dispersive coupling of a high finesse cavity to a micromechanical membrane
- Dispersive optomechanics: a membrane inside a cavity
- High quality mechanical and optical properties of commercial silicon nitride membranes
- Demonstration of a squeezed light enhanced power- and signal-recycled Michelson interferometer
- A theoretical approach to thermal noise caused by an inhomogeneously distributed loss -- Physical insight by the advanced modal expansion
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- Cavity-Enhanced Long-Distance Coupling of an Atomic Ensemble to a Micromechanical Membrane
- Cavity optomechanics with Si3N4 membranes at cryogenic temperatures
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- Einstein-Podolsky-Rosen - entangled motion of two massive objects
- Laser interferometry with translucent and absorbing mechanical oscillators
- Generalized analysis of quantum noise and dynamic back-action in signal-recycled Michelson-type laser interferometers
- Squeezed-light interferometry on a cryogenically-cooled micro-mechanical membrane
- Stable optical spring in aLIGO detector with unbalanced arms and in Michelson-Sagnac interferometer
- Tomographic readout of an opto-mechanical interferometer
- Optomechanical approach to controlling the temperature and chemical potential of light