Crank-rocker optical fiber mode scrambler prototype for the GMT-Consortium Large Earth Finder (G-CLEF)

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Hauptverfasser: Leung, Matthew C. H., Jurgenson, Colby, Szentgyorgyi, Andrew, Podgorski, William, Mueller, Mark, Rimalt, Yahel Sofer, Zajac, Joseph, Onyuksel, Cem, Durusky, Daniel, Doherty, Peter
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Veröffentlicht: 2025
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author Leung, Matthew C. H.
Jurgenson, Colby
Szentgyorgyi, Andrew
Podgorski, William
Mueller, Mark
Rimalt, Yahel Sofer
Zajac, Joseph
Onyuksel, Cem
Durusky, Daniel
Doherty, Peter
author_facet Leung, Matthew C. H.
Jurgenson, Colby
Szentgyorgyi, Andrew
Podgorski, William
Mueller, Mark
Rimalt, Yahel Sofer
Zajac, Joseph
Onyuksel, Cem
Durusky, Daniel
Doherty, Peter
contents When coherent light propagates through a multimode optical fiber, the modes interfere at the fiber exit boundary, producing a high-contrast speckle interference pattern called modal noise. This non-uniform interference pattern introduces systematic errors in fiber-fed precision radial velocity (RV) spectrographs which are detrimental to exoplanet mass measurement. Modal noise can be mitigated by a device called a fiber mode scrambler or fiber agitator, which dynamically perturbs the fiber to change the interference pattern over time, smoothing it over long exposures. In this paper, we present a prototype optical fiber mode scrambler based on a four-bar linkage crank-rocker mechanism, developed for the GMT-Consortium Large Earth Finder (G-CLEF). G-CLEF is a fiber-fed, high-resolution, precision RV spectrograph for the Magellan Clay Telescope and Giant Magellan Telescope (GMT). To support this effort, we developed a fiber testing setup capable of imaging the near-field and far-field output of fibers and measuring focal ratio degradation. We designed, built, and tested the mode scrambler, using our setup, on step-index multimode optical fibers with various shapes, including octagonal, square, and rectangular core cross-sections. We developed custom software utilizing alpha shapes to identify the boundary of an arbitrarily shaped fiber and to compute a signal-to-noise ratio metric for quantifying modal noise. We investigated the effects of different mode scrambler parameters, such as agitation frequency, on mitigating modal noise. Our results offer valuable insights into optimizing fiber mode scrambling for precision RV spectrographs.
format Preprint
id arxiv_https___arxiv_org_abs_2509_18306
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Crank-rocker optical fiber mode scrambler prototype for the GMT-Consortium Large Earth Finder (G-CLEF)
Leung, Matthew C. H.
Jurgenson, Colby
Szentgyorgyi, Andrew
Podgorski, William
Mueller, Mark
Rimalt, Yahel Sofer
Zajac, Joseph
Onyuksel, Cem
Durusky, Daniel
Doherty, Peter
Instrumentation and Methods for Astrophysics
When coherent light propagates through a multimode optical fiber, the modes interfere at the fiber exit boundary, producing a high-contrast speckle interference pattern called modal noise. This non-uniform interference pattern introduces systematic errors in fiber-fed precision radial velocity (RV) spectrographs which are detrimental to exoplanet mass measurement. Modal noise can be mitigated by a device called a fiber mode scrambler or fiber agitator, which dynamically perturbs the fiber to change the interference pattern over time, smoothing it over long exposures. In this paper, we present a prototype optical fiber mode scrambler based on a four-bar linkage crank-rocker mechanism, developed for the GMT-Consortium Large Earth Finder (G-CLEF). G-CLEF is a fiber-fed, high-resolution, precision RV spectrograph for the Magellan Clay Telescope and Giant Magellan Telescope (GMT). To support this effort, we developed a fiber testing setup capable of imaging the near-field and far-field output of fibers and measuring focal ratio degradation. We designed, built, and tested the mode scrambler, using our setup, on step-index multimode optical fibers with various shapes, including octagonal, square, and rectangular core cross-sections. We developed custom software utilizing alpha shapes to identify the boundary of an arbitrarily shaped fiber and to compute a signal-to-noise ratio metric for quantifying modal noise. We investigated the effects of different mode scrambler parameters, such as agitation frequency, on mitigating modal noise. Our results offer valuable insights into optimizing fiber mode scrambling for precision RV spectrographs.
title Crank-rocker optical fiber mode scrambler prototype for the GMT-Consortium Large Earth Finder (G-CLEF)
topic Instrumentation and Methods for Astrophysics
url https://arxiv.org/abs/2509.18306