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Femtosecond frequency combs for optical clocks and timing transfer.

机译:飞秒频率梳用于光学时钟和定时传输。

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摘要

The rapid development of femtosecond optical frequency combs over the last decade has brought together ultrastable phase control of both cw and mode-locked lasers and ultrafast time-domain applications. Frequency-domain laser stabilization techniques applied to the ultrashort-pulse trains emitted by a mode-locked laser result in a level of optical phase control previously achievable only for radio frequencies and microwaves. I present our work extending such control to mode-locked lasers for both timing and frequency stabilization applications of optical frequency combs.;I first present a microwave technique for synchronizing two independent modelocked lasers at a level of timing precision less than the duration of an optical cycle, below 1 fs of residual rms timing jitter. Using these synchronized pulses, simultaneous sum- and difference-frequency generation of 400-nm and tunable mid-infrared fs pulses is demonstrated, opening the door for broadband coherent control of atomic and molecular systems.;For frequency metrology, I report on an offset-free clockwork for an optical clock based on the 3.39-mum transition in methane. The clockwork's simplicity leads to a robust and reliable table-sized optical frequency reference with instability approaching a few parts in 1014. Then I describe a directly-octave-spanning, self-referenced Ti:sapphire laser employed as the robustly-running phase-coherent clockwork for an 87Sr optical lattice clock. The optical comb distributes the 2-s coherence time of the 698-nm ultrastable clock laser to its modes spanning the visible and near-IR spectrum, and is therefore simultaneously used as a hub for measuring absolute frequencies or frequency ratios between the Sr clock and other remotely-located microwave and optical atomic standards.;Finally, I report on the transfer of ultrastable frequency references, both microwave and optical, through 10-km-scale optical fiber links. Actively stabilizing the optical phase delay of such a fiber link, we are able to transfer a cw optical frequency standard with a transfer instability of 6x10 -18 at 1 s, more than two orders of magnitude lower than reported for any fiber link of similar length. Phase coherence between ends of the fiber link is preserved at the mHz linewidth level, and the transfer phase noise corresponds to less than 80 attoseconds of rms timing jitter integrated from 10 mHz to 30 MHz.
机译:在过去的十年中,飞秒光学频率梳的飞速发展将连续激光器和锁模激光器的超稳定相位控制以及超快速时域应用结合在一起。应用于锁模激光器发射的超短脉冲序列的频域激光稳定技术可以实现以前仅对射频和微波才能实现的光学相位控制。我介绍了将控制范围扩展到锁模激光器的工作,以实现光学频率梳的定时和频率稳定化应用;我首先介绍了一种微波技术,用于以小于光学持续时间的定时精度来同步两个独立的锁模激光器周期,低于残余均方根时序抖动的1 fs。通过使用这些同步脉冲,演示了同时产生400 nm的和频和差频以及可调谐的中红外fs脉冲,这为原子和分子系统的宽带相干控制打开了方便之门。基于甲烷3.39毫米跃迁的光学时钟的免费发条。发条的简单性导致了鲁棒且可靠的工作台大小的光频率基准,其不稳定性在1014年几乎达到了几部分。然后,我描述了直接跨倍频程,自参考的Ti:蓝宝石激光器,作为稳健运行的相干激光器87Sr光学晶格时钟的发条。光学梳将698 nm超稳定时钟激光器的2 s相干时间分配到其跨越可见光谱和近IR光谱的模式,因此可以同时用作测量Sr时钟与Sr时钟之间的绝对频率或频率比的集线器。最后,我报告了通过10公里尺度的光纤链路传输微波和光学超稳定频率参考的情况。通过积极稳定此类光纤链路的光相位延迟,我们能够在1 s内传输传输不稳定度为6x10 -18的连续波光频率标准,比任何长度相似的光纤链路都低两个数量级。光纤链路两端之间的相位相干性保持在mHz线宽水平,并且传输相位噪声对应于从10 mHz到30 MHz积分的rms时序抖动小于80阿秒。

著录项

  • 作者

    Foreman, Seth M.;

  • 作者单位

    University of Colorado at Boulder.;

  • 授予单位 University of Colorado at Boulder.;
  • 学科 Physics Optics.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 265 p.
  • 总页数 265
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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