Moan E R, Horne R A, Arpornthip T, Luo Z, Fallon A J, Berl S J, Sackett C A
Department of Physics, University of Virginia, Charlottesville, Virginia 22904, USA.
Phys Rev Lett. 2020 Mar 27;124(12):120403. doi: 10.1103/PhysRevLett.124.120403.
We describe a Sagnac interferometer suitable for rotation sensing, implemented using an atomic Bose-Einstein condensate confined in a harmonic magnetic trap. The atom wave packets are split and recombined by standing-wave Bragg lasers, and the trapping potential steers the packets along circular trajectories with a radius of 0.2 mm. Two conjugate interferometers are implemented simultaneously to provide common-mode rejection of noise and to isolate the rotation signal. With interference visibilities of about 50%, we achieve a rotation sensitivity comparable to Earth's rate in about 10 min of operation. Gyroscope operation was demonstrated by rotating the optical table on which the experiment was performed.
我们描述了一种适用于旋转传感的萨格纳克干涉仪,它是利用限制在谐波磁阱中的原子玻色-爱因斯坦凝聚体实现的。原子波包由驻波布拉格激光器分裂和重组,捕获势使波包沿着半径为0.2毫米的圆形轨迹运动。同时实现了两个共轭干涉仪,以提供噪声的共模抑制并分离旋转信号。在干涉可见度约为50%的情况下,我们在大约10分钟的运行时间内实现了与地球自转速率相当的旋转灵敏度。通过旋转进行实验的光学平台展示了陀螺仪的运行。