Measuring nanomechanical motion with a microwave cavity interferometer
arXiv:0801.1827
Abstract
In recent years microfabricated microwave cavities have been extremely successful in a wide variety of detector applications. In this article we focus this technology on the challenge of quantum-limited displacement detection of a macroscopic object. We measure the displacement of a nanomechanical beam by capacitively coupling its position to the resonant frequency of a superconducting transmission-line microwave cavity. With our device we realize near state-of-the-art mechanical force sensitivity (3 ) and thus add to only a handful of techniques able to measure thermomechanical motion at 10's of milliKelvin temperatures. Our measurement imprecision reaches a promising 30 times the expected imprecision at the standard quantum limit, and we quantify our ability to extract measurement backaction from our results as well as elucidate the important steps that will be required to progress towards the full quantum limit with this new detector.
Minor changes and corrections to text and figures; 7 pages, 6 figures
References in corpus (7)
- Quantum Theory of Cavity-Assisted Sideband Cooling of Mechanical Motion
- Theory of ground state cooling of a mechanical oscillator using dynamical back-action
- Cooling a nanomechanical resonator with quantum back-action
- Feedback cooling of a cantilever's fundamental mode below 5 mK
- Entangling a nanomechanical resonator and a superconducting microwave cavity
- Passive Cooling of a Micromechanical Oscillator with a Resonant Electric Circuit
- Intrinsic noise properties of atomic point contact displacement detectors