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Sensing earth's rotation with a helium-neon ring laser operating at 1.15 μm

  • K. Ulrich Schreiber (Corresponding author)
  • , Robert J. Thirkettle
  • , Robert B. Hurst
  • , David Follman
  • , Garrett D. Cole
  • , Markus Aspelmeyer
  • , Jon-Paul R. Wells

Publications: Contribution to journalArticlePeer Reviewed

Abstract

We report on the operation of a 2.56 m2 helium-neon based ring laser interferometer at a wavelength of 1.152276 μm using crystalline coated intracavity supermirrors. This work represents the first implementation of crystalline coatings in an active laser system and expands the core application area of these low-thermal-noise cavity end mirrors to inertial sensing systems. Stable gyroscopic behavior can only be obtained with the addition of helium to the gain medium as this quenches the 1.152502 μm (2s 4→ 2p 7 ) transition of the neon doublet which otherwise gives rise to mode competition. For the first time at this wavelength, the ring laser is observed to readily unlock on the bias provided by the earth's rotation alone, yielding a Sagnac frequency of approximately 59 Hz.

Original languageEnglish
Pages (from-to)1705-1708
Number of pages4
JournalOptics Letters
Volume40
Issue number8
DOIs
Publication statusPublished - 15 Apr 2015

Funding

The authors acknowledge support from the German national science foundation DFG under contract Schr645/6-1 and assistance from the Marsden Fund of the Royal Society of New Zealand under contract 10-UOC-041. G. D. Cole acknowledges support from EURAMET/EMRP (QESOCAS) and thanks Dr. A. Alexandrovski of SPTS for performing optical absorption measurements. A portion of this work was performed in the UCSB Nanofabrication Facility.

Austrian Fields of Science 2012

  • 103026 Quantum optics

Keywords

  • OSCILLATION
  • GYRO

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