干涉测量
原子干涉仪
引力波
物理
重力仪
探测器
噪音(视频)
激光器
天文干涉仪
光学
计算机科学
天文
图像(数学)
人工智能
作者
Peter W. Graham,Jason Hogan,Mark A. Kasevich,Surjeet Rajendran
标识
DOI:10.1103/physrevlett.110.171102
摘要
Laser frequency noise is a dominant noise background for the detection of gravitational waves using long-baseline optical interferometry. Amelioration of this noise requires near simultaneous strain measurements on more than one interferometer baseline, necessitating, for example, more than two satellites for a space-based detector or two interferometer arms for a ground-based detector. We describe a new detection strategy based on recent advances in optical atomic clocks and atom interferometry which can operate at long baselines and which is immune to laser frequency noise. Laser frequency noise is suppressed because the signal arises strictly from the light propagation time between two ensembles of atoms. This new class of sensor allows sensitive gravitational wave detection with only a single baseline. This approach also has practical applications in, for example, the development of ultrasensitive gravimeters and gravity gradiometers.
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