论文标题

用主动光学元件稳定点对点的光学频率传输

Point-to-Point Stabilised Optical Frequency Transfer with Active Optics

论文作者

Dix-Matthews, Benjamin P., Schediwy, Sascha W., Gozzard, David R., Savalle, Etienne, Esnault, François-Xavier, Lévèque, Thomas, Gravestock, Charles, D'Mello, Darlene, Karpathakis, Skevos, Tobar, Michael, Wolf, Peter

论文摘要

从地面到空间与地面自由空间激光链路之间的光原子时钟之间的时间尺度比较将对基本和应用科学带来巨大的好处,从基本常数的测量以及寻找暗物质,到地球物理学和环境监测。然而,大气中的湍流会在激光信号上产生相位噪声,从而极大地降低了测量的精度,并引起闪烁和横梁徘徊,这会导致周期性的深层褪色和信号的损失。我们在265 M的水平点对点自由空间链路上展示了相位稳定的光频传递,并在具有主动尖端倾斜镜的光学端子之间进行了抑制光束徘徊,以紧凑的,可携带的设置来抑制光束徘徊。两个端子之间的相位稳定的715 m地下光纤连接用于测量自由空间链路的性能。主动光学端子启用了长达一个小时的连续连贯的传输。我们将80 db的大气相噪声抑制至$ 3 \ times10^{ - 6} $ rad $^{2} $ hz $^{ - 1} $在1 Hz处,并且在40 s集成后,最终的分数频率稳定性为$ 1.6 \ times10^{ - 19} $。在高频下,这种性能受到补偿后的残留大气噪声以及通过自由空间和光纤链路不平等的延迟所看到的激光的频率噪声的限制。我们的长期稳定性受相位稳定系统的热屏蔽的限制。我们在最佳的光原子时钟下方实现了剩余的不稳定性,从而确保了在湍流自由空间链路上的时钟受限频率比较。

Timescale comparison between optical atomic clocks over ground-to-space and terrestrial free-space laser links will have enormous benefits for fundamental and applied science, from measurements of fundamental constants and searches for dark matter, to geophysics and environmental monitoring. However, turbulence in the atmosphere creates phase noise on the laser signal, greatly degrading the precision of the measurements, and also induces scintillation and beam wander which cause periodic deep fades and loss of signal. We demonstrate phase stabilized optical frequency transfer over a 265 m horizontal point-to-point free-space link between optical terminals with active tip-tilt mirrors to suppress beam wander, in a compact, human-portable set-up. A phase stabilized 715 m underground optical fiber link between the two terminals is used to measure the performance of the free-space link. The active optics terminals enabled continuous, coherent transmission over periods of up to an hour. We achieve an 80 dB suppression of atmospheric phase noise to $3\times10^{-6}$ rad$^{2}$Hz$^{-1}$ at 1 Hz, and an ultimate fractional frequency stability of $1.6\times10^{-19}$ after 40 s of integration. At high frequency this performance is limited by the residual atmospheric noise after compensation and the frequency noise of the laser seen through the unequal delays of the free space and fiber links. Our long term stability is limited by the thermal shielding of the phase stabilization system. We achieve residual instabilities below those of the best optical atomic clocks, ensuring clock-limited frequency comparison over turbulent free-space links.

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