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Microsystems & nanoengineering, 2016-08, Vol.2 (1), p.16037-16037, Article 16037
2016

Details

Autor(en) / Beteiligte
Titel
Thermoluminescent microparticle thermal history sensors
Ist Teil von
  • Microsystems & nanoengineering, 2016-08, Vol.2 (1), p.16037-16037, Article 16037
Ort / Verlag
England: Nature Publishing Group
Erscheinungsjahr
2016
Link zum Volltext
Quelle
EZB Electronic Journals Library
Beschreibungen/Notizen
  • While there are innumerable devices that measure temperature, the nonvolatile measurement of thermal history is far more difficult, particularly for sensors embedded in extreme environments such as fires and explosions. In this review, an extensive analysis is given of one such technology: thermoluminescent microparticles. These are transparent dielectrics with a large distribution of trap states that can store charge carriers over very long periods of time. In their simplest form, the population of these traps is dictated by an Arrhenius expression, which is highly dependent on temperature. A particle with filled traps that is exposed to high temperatures over a short period of time will preferentially lose carriers in shallow traps. This depopulation leaves a signature on the particle luminescence, which can be used to determine the temperature and time of the thermal event. Particles are prepared-many months in advance of a test, if desired-by exposure to deep ultraviolet, X-ray, beta, or gamma radiation, which fills the traps with charge carriers. Luminescence can be extracted from one or more particles regardless of whether or not they are embedded in debris or other inert materials. Testing and analysis of the method is demonstrated using laboratory experiments with microheaters and high energy explosives in the field. It is shown that the thermoluminescent materials LiF:Mg,Ti, MgB O :Dy,Li, and CaSO :Ce,Tb, among others, provide accurate measurements of temperature in the 200 to 500 °C range in a variety of high-explosive environments.
Sprache
Englisch
Identifikatoren
ISSN: 2055-7434, 2096-1030
eISSN: 2055-7434
DOI: 10.1038/micronano.2016.37
Titel-ID: cdi_pubmedcentral_primary_oai_pubmedcentral_nih_gov_6444729
Format
Schlagworte
Review

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