This paper describes the experimental characterization and Monte Carlo (MC) modelling of developed thermal neutron detectors based on p-i-n silicon diodes covered with micrometric layers of 6LiF, called TNPD (Thermal Neutron Pulse Detector). TNPDs are routinely manufactured at INFN-LNF for a variety of neutron measurement applications. TNPDs with different 6LiF thickness, in the range 10–60 μm, were manufactured and thoroughly modelled using two independent Monte Carlo transport codes: MCNP6.2 and PHITS. The simulations were focussed on determining the pulse height distribution induced in the detectors when exposed to thermal neutrons. A validation experiment was performed in the HOTNES thermal neutron calibration facility (ENEA/INFN Frascati, Italy). The simulated pulse height distributions matched very well the experimental ones in terms of both shape and energy-integrated quantities. No scaling factors were needed. This work is an important milestone for the INFN-LNF detector-manufacturing laboratory. In addition, it provides guidance for others who need to accurately predict the response of similar detectors in a wide range of applications.

Modelling the response of semiconductor based thermal neutron detectors with MCNP 6.2 and PHITS

Altieri S.
2021-01-01

Abstract

This paper describes the experimental characterization and Monte Carlo (MC) modelling of developed thermal neutron detectors based on p-i-n silicon diodes covered with micrometric layers of 6LiF, called TNPD (Thermal Neutron Pulse Detector). TNPDs are routinely manufactured at INFN-LNF for a variety of neutron measurement applications. TNPDs with different 6LiF thickness, in the range 10–60 μm, were manufactured and thoroughly modelled using two independent Monte Carlo transport codes: MCNP6.2 and PHITS. The simulations were focussed on determining the pulse height distribution induced in the detectors when exposed to thermal neutrons. A validation experiment was performed in the HOTNES thermal neutron calibration facility (ENEA/INFN Frascati, Italy). The simulated pulse height distributions matched very well the experimental ones in terms of both shape and energy-integrated quantities. No scaling factors were needed. This work is an important milestone for the INFN-LNF detector-manufacturing laboratory. In addition, it provides guidance for others who need to accurately predict the response of similar detectors in a wide range of applications.
2021
Applied Physics/Condensed Matter/Materials Science encompasses the resources of three related disciplines: Applied Physics, Condensed Matter Physics, and Materials Science. The applied physics resources are concerned with the applications of topics in condensed matter as well as optics, vacuum science, lasers, electronics, cryogenics, magnets and magnetism, acoustical physics and mechanics. The condensed matter physics resources are concerned with the study of the structure and the thermal, mechanical, electrical, magnetic and optical properties of condensed matter. They include superconductivity, surfaces, interfaces, thin films, dielectrics, ferroelectrics and semiconductors. The materials science resources are concerned with the physics and chemistry of materials and include ceramics, composites, alloys, metals and metallurgy, nanotechnology, nuclear materials, adhesion and adhesives. Resources dealing with polymeric materials are listed in the Organic Chemistry/Polymer Science category.
Esperti anonimi
Inglese
Internazionale
1018
165855
5
HOTNES; LEMRAP; MCNP6.2; Neutron detectors; PHITS; TNPD
8
info:eu-repo/semantics/article
262
Bedogni, R.; Calamida, A.; Castro-Campoy, A. I.; Gomez-Ros, J. M.; Lega, A.; Moraleda, M.; Pietropaolo, A.; Altieri, S.
1 Contributo su Rivista::1.1 Articolo in rivista
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11571/1447256
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