Kavli Institute of Nanoscience, Delft University of Technology, PO Box 5046, Delft GA 2600, The Netherlands.
Nat Commun. 2013;4:1803. doi: 10.1038/ncomms2827.
For the study of nanomechanical resonators, ultra-sensitive measurement techniques are crucial. However, if the measurement sensitivity approaches quantum-mechanical limits, the back-action of the detector on the resonator cannot be neglected. If the back-action is strong enough, the corresponding instability can create self-sustained oscillators in the resonator. Here we demonstrate that a torsional mechanical resonator, which contains a direct current SQUID displacement detector, leads to this effect. We find that the Lorentz-force back-action can be so large that, in combination with complex nonlinear Josephson dynamics, it generates intrinsic self-sustained oscillations. The flux quantization limit of the maximum oscillation amplitude is exploited to calibrate the displacement resolution, which is shown to be below the standard quantum limit. The suspended torsional SQUID provides an interesting platform to study on-chip laser-like physics in an electromechanical system that can be controlled by both a flux and current bias.
对于纳米机械谐振器的研究,超灵敏的测量技术至关重要。然而,如果测量灵敏度接近量子力学极限,探测器对谐振器的反作用就不能被忽略。如果反作用足够强,相应的不稳定性会在谐振器中产生自持续振荡器。在这里,我们证明了包含直流超导量子干涉仪位移探测器的扭转机械谐振器会导致这种效应。我们发现,洛伦兹力反作用可能非常大,与复杂的非线性约瑟夫森动力学相结合,会产生内在的自持续振荡。我们利用最大振荡幅度的磁通量子化限制来校准位移分辨率,结果表明其低于标准量子极限。悬浮扭转超导量子干涉仪为研究机电系统中的类激光物理提供了一个有趣的平台,该系统可以通过磁通和电流偏置进行控制。