Nuclear-recoil energy scale in CDMS II silicon dark-matter detectors
Abstract
The Cryogenic Dark Matter Search (CDMS II) experiment aims to detect dark matter particles that elastically scatter from nuclei in semiconductor detectors. The resulting nuclear-recoil energy depositions are detected by ionization and phonon sensors. Neutrons produce a similar spectrum of low-energy nuclear recoils in such detectors, while most other backgrounds produce electron recoils. The absolute energy scale for nuclear recoils is necessary to interpret results correctly. The energy scale can be determined in CDMS II silicon detectors using neutrons incident from a broad-spectrum Cf source, taking advantage of a prominent resonance in the neutron elastic scattering cross section of silicon at a recoil (neutron) energy near 20 (182) keV. Results indicate that the phonon collection efficiency for nuclear recoils is % lower than for electron recoils of the same energy. Comparisons of the ionization signals for nuclear recoils to those measured previously by other groups at higher electric fields indicate that the ionization collection efficiency for CDMS II silicon detectors operated at 4 V/cm is consistent with 100% for nuclear recoils below 20 keV and gradually decreases for larger energies to 75% at 100 keV. The impact of these measurements on previously published CDMS II silicon results is small.
Keywords
Cite
@article{arxiv.1803.02903,
title = {Nuclear-recoil energy scale in CDMS II silicon dark-matter detectors},
author = {R. Agnese and A. J. Anderson and T. Aramaki and W. Baker and D. Balakishiyeva and S. Banik and D. Barker and R. Basu Thakur and D. A. Bauer and T. Binder and A. Borgland and M. A. Bowles and P. L. Brink and R. Bunker and B. Cabrera and D. O. Caldwell and R. Calkins and C. Cartaro and D. G. Cerdeno and H. Chagani and Y. -Y. Chang and Y. Chen and J. Cooley and B. Cornell and P. Cushman and M. Daal and T. Doughty and E. M. Dragowsky and L. Esteban and S. Fallows and E. Fascione and E. Figueroa-Feliciano and M. Fritts and G. Gerbier and R. Germond and M. Ghaith and G. L. Godfrey and S. R. Golwala and J. Hall and H. R. Harris and D. Holmgren and Z. Hong and L. Hsu and M. E. Huber and V. Iyer and D. Jardin and A. Jastram and C. Jena and M. H. Kelsey and A. Kennedy and A. Kubik and N. A. Kurinsky and A. Leder and E. Lopez Asamar and P. Lukens and D. MacDonell and R. Mahapatra and V. Mandic and N. Mast and K. A. McCarthy and E. H. Miller and N. Mirabolfathi and R. A. Moffatt and B. Mohanty and D. Moore and J. D. Morales Mendoza and J. Nelson and S. M. Oser and K. Page and W. A. Page and R. Partridge and M. Penalver Martinez and M. Pepin and A. Phipps and S. Poudel and M. Pyle and H. Qiu and W. Rau and P. Redl and A. Reisetter and A. Roberts and H. E. Rogers and A. E. Robinson and T. Saab and B. Sadoulet and J. Sander and K. Schneck and R. W. Schnee and S. Scorza and K. Senapati and B. Serfass and D. Speller and P. C. F. Di Stefano and M. Stein and J. Street and H. A. Tanaka and D. Toback and R. Underwood and A. N. Villano and B. von Krosigk and B. Welliver and J. S. Wilson and M. J. Wilson and D. H. Wright and S. Yellin and J. J. Yen and B. A. Young and X. Zhang and X. Zhao},
journal= {arXiv preprint arXiv:1803.02903},
year = {2018}
}
Comments
22 pages, 17 figures, 1 table, 1 appendix