Published February 10, 2023
| Version v1
Publication
Colorimetric energy sensitive scintillator detectors based on luminescent multilayer designs
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Description
In this work we present a new concept for energy sensitive radiation-beam scintillator detectors based on
a luminescent multilayer design, where each layer within the stack consists of a rare-earth-doped highly
transparent oxide. For a given type of particle beam (i.e., protons, particles, etc.), its penetration depth,
and therefore its energy loss at a particular buried layer, depends on its initial kinetic energy. Relying on
this principle and since the intensity of the luminescent response of each layer and substrate should be
proportional to the energy deposited by the radiation beam, we prove that a characteristic energy depen-
dent color emission is obtained depending on both the phosphors integrated in the luminescent stack and
on the primary energy and type of particle beam. Phosphor doping, emission efficiency, layer thickness,
and multilayer structure design are key parameters to achieve a broad gamut in colorimetric response.
The developed scintillators are designed to operate in a transmission geometry (light detection from the
opposite side of the incident radiation) which is well suited for high energy particle detection in fields
such as oncotherapy, space radiation, or of fusion studies. The principles of the method are illustrated
with a case example typical of ion beam accelerators devoted to materials analysis. It is obtained that the
kinetic energy of protons/alpha particle beams can be distinguished and evaluated with a sensitivity of
0.06/0.25 chromaticity units per MeV in the 0.7–2.0 MeV range.
Abstract
Ministerio de Economía, Industria y Competitividad-AEI-FEDER MAT2016-79866-RAbstract
Consejo Superior de Investigaciones Científicas de España-CSIC 201560E055Additional details
Identifiers
- URL
- https://idus.us.es/handle//11441/142626
- URN
- urn:oai:idus.us.es:11441/142626
Origin repository
- Origin repository
- USE