Faculty of Physics, M.V. Lomonosov Moscow State University, 119991 Moscow, Russia and Russian Quantum Center, Skolkovo 143025, Russia.
Niels Bohr Institute, University of Copenhagen, Copenhagen 2100, Denmark.
Phys Rev Lett. 2018 Jul 20;121(3):031101. doi: 10.1103/PhysRevLett.121.031101.
Quantum backaction (QBA) of a measurement limits the precision of observation of the motion of a free mass. This profound effect, dubbed the "Heisenberg microscope" in the early days of quantum mechanics, leads to the standard quantum limit (SQL) stemming from the balance between the measurement sensitivity and the QBA. We consider the measurement of motion of a free mass performed in a quantum reference frame with an effective negative mass which is not limited by QBA. As a result, the disturbance on the motion of a free mass can be measured beyond the SQL. QBA-limited detection of motion for a free mass is extremely challenging, but there are devices where this effect is expected to play an essential role, namely, gravitational wave detectors (GWDs) such as LIGO and Virgo. Recent reports on the observations of gravitational waves have opened new horizons in cosmology and astrophysics. We present a general idea and a detailed numerical analysis for QBA-evading measurement of the gravitational wave effect on the GWD mirrors, which can be considered free masses under relevant conditions. The measurement is performed by two entangled beams of light, probing the GWD and an auxiliary atomic spin ensemble, respectively. The latter plays the role of a free negative mass. We show that under realistic conditions the sensitivity of the GWD in m/sqrt[Hz] can be increased by 6 dB over the entire frequency band of interest.
量子反作用(QBA)限制了对自由质量运动的观测精度。这种深远的影响,在量子力学的早期被称为“海森堡显微镜”,导致了标准量子极限(SQL),它源于测量灵敏度和 QBA 之间的平衡。我们考虑在具有有效负质量的量子参考系中测量自由质量的运动,该负质量不受 QBA 限制。因此,可以超越 SQL 测量自由质量的运动。对自由质量的 QBA 限制检测极具挑战性,但有些设备预计会受到这种影响,即引力波探测器(GWD),例如 LIGO 和 Virgo。最近关于引力波观测的报告为宇宙学和天体物理学开辟了新的视野。我们提出了一种通用的想法和详细的数值分析,用于逃避 QBA 的引力波效应测量在 GWD 反射镜上,在相关条件下,可以将其视为自由质量。测量由两束纠缠的光进行,分别探测 GWD 和辅助原子自旋集合。后者充当自由的负质量。我们表明,在实际条件下,GWD 在 m/sqrt[Hz]的灵敏度可以在整个感兴趣的频带内提高 6 dB。