Demonstration of the optical AC coupling technique at the advanced LIGO gravitational wave detector

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Autorschaft

  • S. Kaufer
  • M. Kasprzack
  • V. Frolov
  • B. Willke

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OriginalspracheEnglisch
Aufsatznummer145001
FachzeitschriftClassical and quantum gravity
Jahrgang34
Ausgabenummer14
PublikationsstatusVeröffentlicht - 2017

Abstract

Lasers for gravitational wave detectors need to fulfill tight requirements in amplitude stability, which can only be met by means of feedback control loops. Ultimately, power stabilization control loops are limited by the shot noise of their sensor. The power noise increases linearly with the amount of detected power, while the shot noise grows with the square root. Increasing the detected power is therefore a suitable means to reach a lower sensing noise but it is limited by the power handling capabilities of the photodiodes. An alternative way of improving the sensitivity is the optical AC coupling technique, which exploits the high pass behavior of an optical resonator to reduce the optical power on the detector without compromising its sensitivity above the corner frequency. In this paper we investigate the optical AC coupling technique at the aLIGO Livingston gravitational wave detector. We measured an optical AC coupling gain of 10 dB in the gravitational wave detection band, which offers the potential to improve the laser power stability by the same factor.

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Demonstration of the optical AC coupling technique at the advanced LIGO gravitational wave detector. / Kaufer, S.; Kasprzack, M.; Frolov, V. et al.
in: Classical and quantum gravity, Jahrgang 34, Nr. 14, 145001, 2017.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Kaufer S, Kasprzack M, Frolov V, Willke B. Demonstration of the optical AC coupling technique at the advanced LIGO gravitational wave detector. Classical and quantum gravity. 2017;34(14):145001. doi: 10.1088/1361-6382/aa7119
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N1 - Funding information: LIGO was constructed by the California Institute of Technology and Massachusetts Institute of Technology with funding from the National Science Foundation. It operates under Cooperative Agreement No. PHY-0757058. Advanced LIGO was built under Grant No. PHY-0823459. MK wants to acknowledge NSF Grant No. PHY-1505779 and Grant No. PHY-1205882. The corresponding author was supported by the Max Planck Society, Germany, and the LSC Fellows program. The LIGO Document Number of this document is LIGO-P1700010.

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