Improving position resolution of neutron detectors with ultra-thin B4C foils
N. F. V. Duarte, J. S. Marcos, A. Antognini, C. Klauser, S. A. Felix,, C. M. B. Monteiro, F. D. Amaro

TL;DR
This paper introduces a novel neutron detection technique using ultra-thin B4C foils, enabling the detection of both secondary particles emitted in neutron reactions, significantly enhancing spatial resolution in gaseous detectors.
Contribution
The paper presents a new ultra-thin B4C foil method that allows both reaction particles to be detected, improving neutron position resolution by a factor of 8 over traditional thicker-layer detectors.
Findings
Spatial resolution improved by a factor of 8
Both secondary particles can be detected simultaneously
Simulation confirms effectiveness of ultra-thin B4C layers
Abstract
A new technique for detection of slow neutrons with gaseous detectors using ultra-thin layers with 10B atoms is presented. The reaction between a thermal neutron and a 10B atom releases 2 secondary particles, namely a 7Li ion and an alpha particle, which due to momentum conservation are emitted in opposite directions, along the same line (back to back). Current boron coated neutron detectors are equipped with 10B films with thicknesses of several micrometers, deposited on very thick substrate plates. However, since the ranges of the 7Li ion and the alpha particle are of few micrometeres in most materials, one of these particles is always lost in the 10B layer or substrate. As such, these detectors lose the ability to reconstruct the reaction line of action and to precisely determine the neutron position, as only one of the two secondary particles track can be measured. With the…
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Taxonomy
TopicsParticle Detector Development and Performance · Radiation Detection and Scintillator Technologies · Atomic and Subatomic Physics Research
