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3
Compact stabilized semiconductor laser for frequency metrology.用于频率计量的紧凑型稳定半导体激光器。
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4
Nano-Kelvin thermometry and temperature control: beyond the thermal noise limit.纳米开尔文测温与温度控制:超越热噪声极限。
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5
Low-pump-power, low-phase-noise, and microwave to millimeter-wave repetition rate operation in microcombs.微梳中的低泵浦功率、低相位噪声和微波至毫米波重复率操作。
Phys Rev Lett. 2012 Dec 7;109(23):233901. doi: 10.1103/PhysRevLett.109.233901. Epub 2012 Dec 4.
6
Dual-mode temperature compensation technique for laser stabilization to a crystalline whispering gallery mode resonator.用于将激光稳定到晶体回音壁模式谐振器的双模温度补偿技术。
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8
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9
Temperature measurement and stabilization in a birefringent whispering gallery mode resonator.双折射回音壁模式谐振器中的温度测量与稳定
Opt Express. 2011 Jul 18;19(15):14495-501. doi: 10.1364/OE.19.014495.
10
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使用微纳制造铷原子池的微谐振器布里渊激光稳频

Microresonator Brillouin laser stabilization using a microfabricated rubidium cell.

作者信息

Loh William, Hummon Matthew T, Leopardi Holly F, Fortier Tara M, Quinlan Frank, Kitching John, Papp Scott B, Diddams Scott A

出版信息

Opt Express. 2016 Jun 27;24(13):14513-24. doi: 10.1364/OE.24.014513.

DOI:10.1364/OE.24.014513
PMID:27410604
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10949952/
Abstract

We frequency stabilize the output of a miniature stimulated Brillouin scattering (SBS) laser to rubidium atoms in a microfabricated cell to realize a laser system with frequency stability at the 10 level over seven decades in averaging time. In addition, our system has the advantages of robustness, low cost and the potential for integration that would lead to still further miniaturization. The SBS laser operating at 1560 nm exhibits a spectral linewidth of 820 Hz, but its frequency drifts over a few MHz on the 1 hour timescale. By locking the second harmonic of the SBS laser to the Rb reference, we reduce this drift by a factor of 10 to the level of a few kHz over the course of an hour. For our combined SBS and Rb laser system, we measure a frequency noise of 4 × 10 Hz/Hz at 10 Hz offset frequency which rapidly rolls off to a level of 0.2 Hz/Hz at 100 kHz offset. The corresponding Allan deviation is ≤2 × 10 for averaging times spanning 10 to 10 s. By optically dividing the signal of the laser down to microwave frequencies, we generate an RF signal at 2 GHz with phase noise at the level of -76 dBc/Hz and -140 dBc/Hz at offset frequencies of 10 Hz and 10 kHz, respectively.

摘要

我们将微型受激布里渊散射(SBS)激光器的输出频率稳定到微纳加工腔体内的铷原子上,以实现一个在长达七个数量级的平均时间内频率稳定性达到10^-9水平的激光系统。此外,我们的系统具有稳健性、低成本以及可集成的潜力,这将进一步推动其小型化。工作在1560 nm波长的SBS激光器的谱线宽度为820 Hz,但在1小时的时间尺度上其频率漂移数兆赫兹。通过将SBS激光器的二次谐波锁定到铷参考频率,我们在一小时内将这种漂移降低了10倍,至几kHz的水平。对于我们的SBS和铷激光组合系统,在10 Hz偏移频率下,我们测得的频率噪声为4×10^-9 Hz/Hz,在100 kHz偏移时迅速下降至0.2 Hz/Hz的水平。对于10^-2至10^2 s的平均时间,相应的阿伦偏差≤2×10^-9。通过将激光信号光频下变频至微波频率,我们产生了一个2 GHz的射频信号,在10 Hz和10 kHz偏移频率下的相位噪声分别为-76 dBc/Hz和-140 dBc/Hz。