English

Local-Oscillator Noise Coupling in Balanced Homodyne Readout for Advanced Gravitational Wave Detectors

Optics 2015-10-28 v1 General Relativity and Quantum Cosmology

Abstract

The second generation of interferometric gravitational wave detectors are quickly approaching their design sensitivity. For the first time these detectors will become limited by quantum back-action noise. Several back-action evasion techniques have been proposed to further increase the detector sensitivity. Since most proposals rely on a flexible readout of the full amplitude- and phase-quadrature space of the output light field, balanced homodyne detection is generally expected to replace the currently used DC readout. Up to now, little investigation has been undertaken into how balanced homodyne detection can be successfully transferred from its ubiquitous application in table-top quantum optics experiments to large-scale interferometers with suspended optics. Here we derive implementation requirements with respect to local oscillator noise couplings and highlight potential issues with the example of the Glasgow Sagnac Speed Meter experiment, as well as for a future upgrade to the Advanced LIGO detectors.

Keywords

Cite

@article{arxiv.1506.07308,
  title  = {Local-Oscillator Noise Coupling in Balanced Homodyne Readout for Advanced Gravitational Wave Detectors},
  author = {Sebastian Steinlechner and Bryan W Barr and Angus S Bell and Stefan L Danilishin and Andreas Gläfke and Christian Gräf and Jan-Simon Hennig and E Alasdair Houston and Sabina H Huttner and Sean S Leavey and Daniela Pascucci and Borja Sorazu and Andrew Spencer and Kenneth A Strain and Jennifer Wright and Stefan Hild},
  journal= {arXiv preprint arXiv:1506.07308},
  year   = {2015}
}

Comments

7 pages, 5 figures