DocumentCode
1521175
Title
Thermal Neutron Scintillator Detectors Based on Poly (2-Vinylnaphthalene) Composite Films
Author
Sen, Indraneel ; Penumadu, Dayakar ; Williamson, Martin ; Miller, Laurence F. ; Green, Alexander D. ; Mabe, Andrew N.
Author_Institution
Civil & Environ. Eng. Dept., Univ. of Tennessee, Knoxville, TN, USA
Volume
58
Issue
3
fYear
2011
fDate
6/1/2011 12:00:00 AM
Firstpage
1386
Lastpage
1393
Abstract
A series of novel 6Li-loaded plastic scintillation films have been designed and fabricated to detect thermal neutrons. Organolithium salts containing enriched 6Li were synthesized and interspersed in a series of matrices comprising a polymer doped with an antenna fluor. Thermal neutron capture by 6Li produces charged particles with kinetic energy which is sufficient to ionize and excite the polymeric matrix. This energy is collected by the antenna fluor, which produces a photonic response detectable by a photomultiplier tube. Design and optimization of these scintillation films is discussed herein. A current problem in the design and fabrication of polymeric composite materials is phase separation. The matrix is a low-dielectric aromatic polymer; hence, ionic molecules in the composite tend to phase-separate from the matrix and produce agglomerates which decrease the quantum efficiency by scattering and/or quenching the photonic response to thermal neutrons. Based on the experimental results, the importance of synthesizing polymers with high quantum yield and efficiency in energy migration and transport for making effective composite neutron scintillators is emphasized.
Keywords
neutron detection; photomultipliers; polymerisation; polymers; solid scintillation detectors; 6Li-loaded plastic scintillation film; antenna fluor; charged particle; energy migration; ionic molecules; kinetic energy; low-dielectric aromatic polymer; organolithium salts; phase separation; photomultiplier tube; photonic response; poly-2-vinylnaphthalene composite film; polymeric composite material; polymeric matrix; quantum efficiency; thermal neutron capture; thermal neutron scintillator detectors; Antennas; Compounds; Detectors; Neutrons; Photonics; Polymers; Detectors; neutron detectors; plastic films; scintillators;
fLanguage
English
Journal_Title
Nuclear Science, IEEE Transactions on
Publisher
ieee
ISSN
0018-9499
Type
jour
DOI
10.1109/TNS.2011.2141149
Filename
5771141
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