Laser interferometry with translucent and absorbing mechanical oscillators
arXiv:1104.3251 · doi:10.1088/1367-2630/13/9/093017
Abstract
The sensitivity of laser interferometers can be pushed into regimes that enable the direct observation of quantum behaviour of mechanical oscillators. In the past, membranes with subwavelength thickness (thin films) have been proposed as high-mechanical-quality, low-thermal-noise oscillators. Thin films from a homogenous material, however, generally show considerable light transmission accompanied by heating due to light absorption, which typically reduces the mechanical quality and limits quantum opto-mechanical experiments in particular at low temperatures. In this work, we experimentally analyze a Michelson-Sagnac interferometer including a translucent silicon nitride (SiN) membrane with subwavelength thickness. We find that such an interferometer provides an operational point being optimally suited for quantum opto-mechanical experiments with translucent oscillators. In case of a balanced beam splitter of the interferometer, the membrane can be placed at a node of the electro-magnetic field, which simultaneously provides lowest absorption and optimum laser noise rejection at the signal port. We compare the optical and mechanical model of our interferometer with experimental data and confirm that the SiN membrane can be coupled to a laser power of the order of one Watt at 1064 nm without significantly degrading the membrane's quality factor of the order 10^6, at room temperature.
References in corpus (8)
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Cited by in corpus (11)
- Quantum Measurement Theory in Gravitational-Wave Detectors
- Dissipative Optomechanics in a Michelson--Sagnac Interferometer
- Observation of generalized optomechanical coupling and cooling on cavity resonance
- Squeezing of a movable mirror via the dissipative optomechanical coupling
- Spectroscopy of mechanical dissipation in micro-mechanical membranes
- Anomalous dynamic back-action in interferometers
- Einstein-Podolsky-Rosen - entangled motion of two massive objects
- Thermal radiation dominated heat transfer in nanomechanical silicon nitride drum resonators
- Squeezed-light interferometry on a cryogenically-cooled micro-mechanical membrane
- Tomographic readout of an opto-mechanical interferometer
- Stable optical spring in aLIGO detector with unbalanced arms and in Michelson-Sagnac interferometer