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逼近机械转矩传感的标准量子极限。

Approaching the standard quantum limit of mechanical torque sensing.

机构信息

Department of Physics, University of Alberta, CCIS 3-199, Edmonton, Alberta, Canada T6G 2E9.

出版信息

Nat Commun. 2016 Oct 20;7:13165. doi: 10.1038/ncomms13165.

Abstract

Reducing the moment of inertia improves the sensitivity of a mechanically based torque sensor, the parallel of reducing the mass of a force sensor, yet the correspondingly small displacements can be difficult to measure. To resolve this, we incorporate cavity optomechanics, which involves co-localizing an optical and mechanical resonance. With the resulting enhanced readout, cavity-optomechanical torque sensors are now limited only by thermal noise. Further progress requires thermalizing such sensors to low temperatures, where sensitivity limitations are instead imposed by quantum noise. Here, by cooling a cavity-optomechanical torque sensor to 25 mK, we demonstrate a torque sensitivity of 2.9 yNm/. At just over a factor of ten above its quantum-limited sensitivity, such cryogenic optomechanical torque sensors will enable both static and dynamic measurements of integrated samples at the level of a few hundred spins.

摘要

减小转动惯量可以提高基于机械的扭矩传感器的灵敏度,就像减小力传感器的质量一样,然而,相应的小位移可能难以测量。为了解决这个问题,我们采用了腔光机械学,它涉及到光学和机械共振的共定位。通过这种增强的读出,腔光机械扭矩传感器现在仅受热噪声限制。进一步的进展需要将这些传感器热化为低温,在低温下,灵敏度限制由量子噪声施加。在这里,通过将腔光机械扭矩传感器冷却至 25 mK,我们实现了 2.9 yNm/的扭矩灵敏度。在仅仅超过其量子限制灵敏度的十倍以上,这种低温光学机械扭矩传感器将能够在几百个旋转的水平上对集成样本进行静态和动态测量。

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