QUBIC VI: cryogenic half wave plate rotator, design and performances
Abstract
Inflation Gravity Waves B-Modes polarization detection is the ultimate goal of modern large angular scale cosmic microwave background (CMB) experiments around the world. A big effort is undergoing with the deployment of many ground-based, balloon-borne and satellite experiments using different methods to separate this faint polarized component from the incoming radiation. One of the largely used technique is the Stokes Polarimetry that uses a rotating half-wave plate (HWP) and a linear polarizer to separate and modulate the polarization components with low residual cross-polarization. This paper describes the QUBIC Stokes Polarimeter highlighting its design features and its performances. A common systematic with these devices is the generation of large spurious signals synchronous with the rotation and proportional to the emissivity of the optical elements. A key feature of the QUBIC Stokes Polarimeter is to operate at cryogenic temperature in order to minimize this unwanted component. Moving efficiently this large optical element at low temperature constitutes a big engineering challenge in order to reduce friction power dissipation. Big attention has been given during the designing phase to minimize the differential thermal contractions between parts. The rotation is driven by a stepper motor placed outside the cryostat to avoid thermal load dissipation at cryogenic temperature. The tests and the results presented in this work show that the QUBIC polarimeter can easily achieve a precision below 0.1{\deg} in positioning simply using the stepper motor precision and the optical absolute encoder. The rotation induces only few mK of extra power load on the second cryogenic stage (~ 8 K).
Keywords
Cite
@article{arxiv.2008.10667,
title = {QUBIC VI: cryogenic half wave plate rotator, design and performances},
author = {G. D'Alessandro and L. Mele and F. Columbro and G. Amico and E. S. Battistelli and P. de Bernardis and A. Coppolecchia and M. De Petris and L. Grandsire and J. -Ch. Hamilton and L. Lamagna and S. Marnieros and S. Masi and A. Mennella and C. O'Sullivan and A. Paiella and F. Piacentini and M. Piat and G. Pisano and G. Presta and A. Tartari and S. A. Torchinsky and F. Voisin and M. Zannoni and P. Ade and J. G. Alberro and A. Almela and L. H. Arnaldi and D. Auguste and J. Aumont and S. Azzoni and S. Banfi and B. Bélier and A. Baù and D. Bennett and L. Bergé and J. -Ph. Bernard and M. Bersanelli and M. -A. Bigot-Sazy and J. Bonaparte and J. Bonis and E. Bunn and D. Burke and D. Buzi and F. Cavaliere and P. Chanial and C. Chapron and R. Charlassier and A. C. Cobos Cerutti and G. De Gasperis and M. De Leo and S. Dheilly and C. Duca and L. Dumoulin and A. Etchegoyen and A. Fasciszewski and L. P. Ferreyro and D. Fracchia and C. Franceschet and M. M. Gamboa Lerena and K. M. Ganga and B. García and M. E. García Redondo and M. Gaspard and D. Gayer and M. Gervasi and M. Giard and V. Gilles and Y. Giraud-Heraud and M. Gómez Berisso and M. González and M. Gradziel and M. R. Hampel and D. Harari and S. Henrot-Versillé and F. Incardona and E. Jules and J. Kaplan and C. Kristukat and S. Loucatos and T. Louis and B. Maffei and W. Marty and A. Mattei and A. May and M. McCulloch and D. Melo and L. Montier and L. Mousset and L. M. Mundo and J. A. Murphy and J. D. Murphy and F. Nati and E. Olivieri and C. Oriol and F. Pajot and A. Passerini and H. Pastoriza and A. Pelosi and C. Perbost and M. Perciballi and F. Pezzotta and L. Piccirillo and M. Platino and G. Polenta and D. Prêle and R. Puddu and D. Rambaud and E. Rasztocky and P. Ringegni and G. E. Romero and J. M. Salum and A. Schillaci and C. G. Scóccola and S. Scully and S. Spinelli and G. Stankowiak and M. Stolpovskiy and A. D. Supanitsky and J. -P. Thermeau and P. Timbie and M. Tomasi and G. Tucker and C. Tucker and D. Viganò and N. Vittorio and F. Wicek and M. Wright and A. Zullo},
journal= {arXiv preprint arXiv:2008.10667},
year = {2022}
}
Comments
Part of a series of 8 papers on QUBIC to be submitted to a special issue of JCAP