English

Ultralong Faraday laser as an optical frequency standard

Atomic Physics 2015-02-10 v2 Optics

Abstract

In this letter, we introduce the concept and experimentally demonstrate an ultralong Faraday laser as an optical frequency standard in principle. The ultralong Faraday laser is based on the Faraday anomalous dispersion optical filter (FADOF) with ultra-narrow bandwidth and the ultralong fiber extended cavity of 800800 m. The ultra-narrow FADOF is based on atomic transition line of isotope 87^{87}Rb, which has an ultra-narrow bandwidth of 26.026.0 MHz and a transmission of 23.6%23.6\% at 780780 nm. Fibers of length 150150 m and 800800 m are used as ultralong fiber extended cavities, which provide optical feedback and give extremely small FSR of 0.6670.667 MHz and 0.1250.125 MHz, respectively. The mechanism of the proposed ultralong Faraday laser is to combine FADOF's ultra-narrow bandwidth and ultralong cavity's small free spectral range to limit the lasing frequency within FADOF bandwidth covered by the semiconductor gain. The active lasing frequency of the ultralong Faraday laser is determined by the center frequency of FADOF transmission, which is corresponding to atomic transition 52S1/2, F=2  52P3/2, F=2, 35^{2}S_{1/2},\ F = 2 \ \rightarrow\ 5^{2}P_{3/2},\ F^{\prime} = 2,\ 3 of isotope 87^{87}Rb. The Allan deviation of the fractional frequency of the ultralong Faraday laser output signal in 0.1 s -- 1 s measuring time is around 1×10111\times10^{-11}.

Keywords

Cite

@article{arxiv.1501.05374,
  title  = {Ultralong Faraday laser as an optical frequency standard},
  author = {Chuanwen Zhu and Mo Chen and Xiaogang Zhang and Xiaobo Xue and Duo Pan and Jingbiao Chen},
  journal= {arXiv preprint arXiv:1501.05374},
  year   = {2015}
}

Comments

Corrected the calculation method of the result of Allan deviation of fractional frequency

R2 v1 2026-06-22T08:09:16.275Z