Frontier Research Institute for Interdisciplinary Sciences, Tohoku University, Sendai 980-8578, Japan.
Research Institute of Electrical Communication, Tohoku University, Sendai 980-8577, Japan.
Phys Rev Lett. 2019 Feb 22;122(7):071101. doi: 10.1103/PhysRevLett.122.071101.
Gravity generated by large masses has been observed using a variety of probes from atomic interferometers to torsional balances. However, gravitational coupling between small masses has never been observed so far. Here, we demonstrate sensitive displacement sensing of the Brownian motion of an optically trapped 7 mg pendulum motion whose natural quality factor is increased to 10^{8} through dissipation dilution. The sensitivity for an integration time of one second corresponds to the displacement generated in a millimeter-scale gravitational experiment between the probe and a 100 mg source mass, whose position is modulated at the pendulum mechanical resonant frequency. Development of such a sensitive displacement sensor using a milligram-scale device will pave the way for a new class of experiments where gravitational coupling between small masses in quantum regimes can be achieved.
大质量产生的重力已经通过各种探测器进行了观测,这些探测器包括原子干涉仪和扭秤。然而,迄今为止,小质量之间的引力耦合从未被观测到。在这里,我们演示了对光捕获的 7 毫克摆的布朗运动的敏感位移传感,通过耗散稀释,其固有品质因数增加到 10^8。对于集成时间为一秒的灵敏度对应于在探针和 100 毫克源质量之间在毫米量级的引力实验中产生的位移,其位置在摆的机械共振频率下被调制。使用毫克级器件开发这种灵敏的位移传感器将为一类新的实验铺平道路,在这些实验中可以在量子态下实现小质量之间的引力耦合。