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Nanoscale TiO2-coated LPGs as radiation-tolerant humidity sensors for high-energy physics applications

Academic Article
Publication Date:
2014
abstract:
This Letter deals with a feasibility analysis for the development of radiation-tolerant fiber-optic humidity sensors based on long-period grating (LPG) technology to be applied in high-energy physics (HEP) experiments currently running at the European Organization for Nuclear Research (CERN). In particular, here we propose a high-sensitivity LPG sensor coated with a finely tuned titanium dioxide (TiO2) thin layer (~100 nm thick) through the solgel deposition method. Relative humidity (RH) monitoring in the range 0%-75% and at four different temperatures (in the range -10°C-25°C) was carried out to assess sensor performance in real operative conditions required in typical experiments running at CERN. Experimental results demonstrate the very high RH sensitivities of the proposed device (up to 1.4 nm/% RH in correspondence to very low humidity levels), which turned out to be from one to three orders of magnitude higher than those exhibited by fiber Bragg grating sensors coated with micrometer-thin polyimide overlays. The radiation tolerance capability of the TiO2-coated LPG sensor is also investigated by comparing the sensing performance before and after its exposure to a 1 Mrad dose of ?-ionizing radiation. Overall, the results collected demonstrate the strong potential of the proposed technology with regard to its future exploitation in HEP applications as a robust and valid alternative to the commercial (polymer-based) hygrometers currently used.
Iris type:
01.01 Articolo in rivista
Keywords:
nanocoatings; humidity sensors
List of contributors:
Giordano, Michele; Borriello, Anna
Authors of the University:
BORRIELLO ANNA
GIORDANO MICHELE
Handle:
https://iris.cnr.it/handle/20.500.14243/315269
Published in:
OPTICS LETTERS
Journal
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http://www.scopus.com/record/display.url?eid=2-s2.0-84904497984&origin=inward
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