Optimisation of the scintillation light collection and uniformity for the SoLid experiment
Abstract
This paper presents a comprehensive optimisation study to maximise the light collection efficiency of scintillating cube elements used in the SoLid detector. Very short baseline reactor experiments, like SoLid, look for active to sterile neutrino oscillation signatures in the anti-neutrino energy spectrum as a function of the distance to the core and energy. Performing a precise search requires high light yield of the scintillating elements and uniformity of the response in the detector volume. The SoLid experiment uses an innovative hybrid technology with two different scintillators: polyvinyltoluene scintillator cubes and LiF:ZnS(Ag) screens. A precision test bench based on a Bi calibration source has been developed to study improvements on the energy resolution and uniformity of the prompt scintillation signal of antineutrino interactions. A trigger system selecting the 1~MeV conversion electrons provides a Gaussian energy peak and allows for precise comparisons of the different detector configurations that were considered to improve the SoLid detector light collection. The light collection efficiency is influenced by the choice of wrapping material, the position of the LiF:ZnS(Ag) screen, the type of fibre, the number of optical fibres and the type of mirror at the end of the fibre. This study shows that large gains in light collection efficiency are possible compared to the SoLid SM1 prototype. The light yield for the SoLid detector is expected to be at least 522 photo-avalanches per MeV per cube, with a relative non-uniformity of 6 %, demonstrating that the required energy resolution of at least 14 % at 1 MeV can be achieved.
Cite
@article{arxiv.1806.02461,
title = {Optimisation of the scintillation light collection and uniformity for the SoLid experiment},
author = {Y. Abreu and Y. Amhis and W. Beaumont and M. Bongrand and D. Boursette and B. C. Castle and K. Clark and B. Coupé and D. Cussans and A. De Roeck and D. Durand and M. Fallot and L. Ghys and L. Giot and K. Graves and B. Guillon and D. Henaff and B. Hosseini and S. Ihantola and S. Jenzer and S. Kalcheva and L. N. Kalousis and M. Labare and G. Lehaut and S. Manley and L. Manzanillas and J. Mermans and I. Michiels and C. Moortgat and D. Newbold and J. Park and V. Pestel and K. Petridis and I. Piñera and L. Popescu and D. Ryckbosch and N. Ryder and D. Saunders and M. -H. Schune and M. Settimo and L. Simard and A. Vacheret and G. Vandierendonck and S. Van Dyck and P. Van Mulders and N. van Remortel and S. Vercaemer and M. Verstraeten and B. Viaud and A. Weber and F. Yermia},
journal= {arXiv preprint arXiv:1806.02461},
year = {2018}
}
Comments
25 pages, 19 figures, published in JINST 2018_JINST_13_P09005