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Needs, Trends, and Advances in Inorganic Scintillators

IEEE Transactions on Nuclear Science · 2018 · Vol. 65(8) · pp. 1977–1997
Christophe DujardinE. AuffrayEdith Bourret-CourchesneP. DorenbosP. LecoqM. NiklА. Н. ВасильевAkira YoshikawaR. Y. Zhu

Abstract

This paper presents new developments in inorganic scintillators widely used for radiation detection. It addresses major emerging research topics outlining current needs for applications and material sciences issues with the overall aim to provide an up-to-date picture of the field. While the traditional forms of scintillators have been crystals and ceramics, new research on films, nanoparticles, and microstructured materials is discussed as these material forms can bring new functionality and therefore find applications in radiation detection. The last part of the contribution reports on the very recent evolutions of the most advanced theories, methods, and analyses to describe the scintillation mechanisms.

Radiation Detection and Scintillator TechnologiesLuminescence Properties of Advanced MaterialsAtomic and Subatomic Physics ResearchScintillatorNanotechnologyScintillationEngineering physicsField (mathematics)Materials scienceComputer scienceEngineering ethicsEngineeringTelecommunications

Funding

  • U.S. Department of Energy
  • European Commission
  • National Nuclear Security Administration
  • Horizon 2020 Framework Programme
  • High Energy Physics
  • Lawrence Berkeley National Laboratory
Citations
508
FWCI
50.77
field-weighted impact
References
214
Percentile
100%
vs. same field & year
Citations per year
References
Organometal Halide Perovskites as Visible-Light Sensitizers for Photovoltaic Cells
Journal of the American Chemical Society · 2009 · 22,193 citations
Transparent Alumina: A Light‐Scattering Model
Journal of the American Ceramic Society · 2003 · 909 citations
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