Shomroni Itay, Qiu Liu, Malz Daniel, Nunnenkamp Andreas, Kippenberg Tobias J
Institute of Physics, École Polytechnique Fédérale de Lausanne, Station 3, CH-1015, Lausanne, Switzerland.
Max-Planck-Institut für Quantenoptik, Hans-Kopfermann-Strasse 1, 85741, Garching, Germany.
Nat Commun. 2019 May 7;10(1):2086. doi: 10.1038/s41467-019-10024-3.
Quantum mechanics imposes a limit on the precision of a continuous position measurement of a harmonic oscillator, due to backaction arising from quantum fluctuations in the measurement field. This standard quantum limit can be surpassed by monitoring only one of the two non-commuting quadratures of the motion, known as backaction-evading measurement. This technique has not been implemented using optical interferometers to date. Here we demonstrate, in a cavity optomechanical system operating in the optical domain, a continuous two-tone backaction-evading measurement of a localized gigahertz-frequency mechanical mode of a photonic-crystal nanobeam cryogenically and optomechanically cooled close to the ground state. Employing quantum-limited optical heterodyne detection, we explicitly show the transition from conventional to backaction-evading measurement. We observe up to 0.67 dB (14%) reduction of total measurement noise, thereby demonstrating the viability of backaction-evading measurements in nanomechanical resonators for optical ultrasensitive measurements of motion and force.
由于测量场中的量子涨落产生的反作用,量子力学对谐振子连续位置测量的精度施加了限制。通过仅监测运动的两个不对易正交分量之一,即所谓的反作用规避测量,可以超越这种标准量子极限。迄今为止,该技术尚未使用光学干涉仪来实现。在这里,我们在一个工作于光学领域的腔光机械系统中,展示了对一个光子晶体纳米梁的局域千兆赫兹频率机械模式进行连续双音反作用规避测量,该纳米梁通过低温和光机械冷却至接近基态。利用量子极限光学外差检测,我们明确展示了从传统测量到反作用规避测量的转变。我们观察到总测量噪声降低了高达0.67分贝(14%),从而证明了反作用规避测量在纳米机械谐振器中用于运动和力的光学超灵敏测量的可行性。