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      Optical suppression of tilt-to-length coupling in the LISA long-arm interferometer

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          Abstract

          The arm length and the isolation in space enable LISA to probe for signals unattainable on ground, opening a window to the sub-Hz gravitational-wave universe. The coupling of unavoidable angular spacecraft jitter into the longitudinal displacement measurement, an effect known as tilt-to-length (TTL) coupling, is critical for realizing the required sensitivity of picometer\(/\sqrt{\rm{Hz}}\). An ultra-stable interferometer testbed has been developed in order to investigate this issue and validate mitigation strategies in a setup representative of the LISA long-arm interferometer. We demonstrate a reduction of TTL coupling between a flat-top beam and a Gaussian beam via introducing two- and four-lens imaging systems. TTL coupling factors below \(\pm 25\,\mu\)m/rad for beam tilts within \(\pm 300\,\mu\)rad are obtained by careful optimization of the system. Moreover we show that the additional TTL coupling due to lateral alignment errors of elements of the imaging system can be compensated by introducing lateral shifts of the detector, and vice versa. These findings help validate the suitability of this noise-reduction technique for the LISA long-arm interferometer.

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          Author and article information

          Journal
          13 February 2020
          Article
          2002.05669
          16ba49a0-f088-4f4c-9917-676279e865b2

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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          Custom metadata
          11 pages, 10 figures
          astro-ph.IM physics.optics

          Optical materials & Optics,Instrumentation & Methods for astrophysics
          Optical materials & Optics, Instrumentation & Methods for astrophysics

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