Optical calibration systems of the Pacific Ocean Neutrino Experiment
Abstract
This work presents the design and performance characterization of the optical calibration systems produced for the Pacific Ocean Neutrino Experiment (P-ONE). These include novel light-pulse driver circuitry based on gallium nitride field-effect transistor technology and its application to directional and isotropic, self-monitoring optical calibration instruments. A total of 330 directional light pulsers and two isotropic, 17-inch calibration modules (P-CALs) were produced for the first P-ONE line. We present the designs and performance of both the directional and isotropic calibration devices and perform detailed optical characterizations of both full-production batches. In a wavelength range of nm, our developed driver circuits achieve emission intensities up to photons and pulse widths as small as ns, respectively. Light-pulse drivers and self-monitoring electronics in the P-CAL were characterized using the same experimental setup, and the instrument's optical-isotropy design was optimized in combination with a dedicated GEANT4-based simulation framework. The optimized P-CAL achieves a simulated isotropy grade of across the entire solid angle range. These simulation investigations were explicitly confirmed by dedicated measurements in both air and water using two independent experimental setups, and we report the results. With this, a detailed performance estimate for deployed P-CAL modules in P-ONE was possible.
Keywords
Cite
@article{arxiv.2603.09495,
title = {Optical calibration systems of the Pacific Ocean Neutrino Experiment},
author = {M. Agostini and A. Alexander Wight and M. Altomare and K. Baş and N. Baily and P. S. Barbeau and A. J. Baron and S. Bash and C. Bellenghi and M. Boehmer and M. Brandenburg and P. Bunton and N. Cedarblade-Jones and B. Crudele and M. Danninger and T. DeYoung and A. Gärtner and J. Garriz and D. Ghuman and L. Ginzkey and T. Glukler and V. Gousy-Leblanc and D. Grant and A. Grimes and C. Haack and R. Hall and R. Halliday and D. Hembroff and F. Henningsen and M. Herle and O. Janik and H. Johnson and W. Kang and S. Karanth and T. Kerscher and S. Kerschtien and K. Kopański and C. Kopper and P. Krause and C. B. Krauss and N. Kurahashi and C. Lagunas Gualda and A. Lam and T. Lavallee and K. Leismüller and R. Li and S. Loipolder and C. Magee and S. Magel and P. Malecki and T. Martin and A. Maunder and C. Miller and N. Molberg and R. Moore and B. Nührenbörger and B. Nichol and W. Noga and R. Ørsøe and L. Papp and V. Parrish and P. Pfahler and J. Pflanz and B. Pirenne and E. Price and A. Rahlin and M. Rangen and E. Resconi and S. Robertson and M. F. Rodriguez-Pilco and D. Salazar-Gallegos and A. Scholz and L. Schumacher and S. Sharma and B. R. Smithers and C. Spannfellner and J. Stacho and I. Taboada and K. Tchiorniy and J. P. Twagirayezu and M. Un Nisa and B. Veenstra and M. Velazquez and L. von der Werth and C. Weaver and N. Whitehorn and L. Winter and R. Wroński and J. P. Yañez and S. Yun-Cárcamo and A. Zaalishvili},
journal= {arXiv preprint arXiv:2603.09495},
year = {2026}
}
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