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arXiv · 1510.03116

First in-beam studies of a Resistive-Plate WELL gaseous multiplier

Abstract

We present the results of the first in-beam studies of a medium size (10$\times$10 cm$^2$) Resistive-Plate WELL (RPWELL): a single-sided THGEM coupled to a pad anode through a resistive layer of high bulk resistivity ($\sim$10$^9 Ω$cm). The 6.2~mm thick (excluding readout electronics) single-stage detector was studied with 150~GeV muons and pions. Signals were recorded from 1$\times$1 cm$^2$ square copper pads with APV25-SRS readout electronics. The single-element detector was operated in Ne\(5% $\mathrm{CH_{4}}$) at a gas gain of a few times 10$^4$, reaching 99$\%$ detection efficiency at average pad multiplicity of $\sim$1.2. Operation at particle fluxes up to $\sim$10$^4$ Hz/cm$^2$ resulted in $\sim$23$\%$ gain drop leading to $\sim$5$\%$ efficiency loss. The striking feature was the discharge-free operation, also in intense pion beams. These results pave the way towards robust, efficient large-scale detectors for applications requiring economic solutions at moderate spatial and energy resolutions.

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S. Bressler, L. Moleri, M. Pitt, S. Kudella, D. C. R. Azevedo, F. D. Amaro, M. R. Jorge, J. M. F. dos Santos, J. F. C. A. Veloso, H. Natal da Luz, L. Arazi, E. Olivieri, A. Breskin. 2016-01-20. First in-beam studies of a Resistive-Plate WELL gaseous multiplier. https://doi.org/10.1088/1748-0221%2F11%2F01%2Fp01005

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