DocumentCode :
58459
Title :
Radiation tolerance of piezoelectric bulk single-crystal aluminum nitride
Author :
Parks, Daniel ; Tittmann, B.
Author_Institution :
NDE Phys. Dept., Idaho Nat. Lab., Idaho Falls, ID, USA
Volume :
61
Issue :
7
fYear :
2014
fDate :
Jul-14
Firstpage :
1216
Lastpage :
1222
Abstract :
For practical use in harsh radiation environments, we pose selection criteria for piezoelectric materials for non-destructive evaluation (NDE) and material characterization. Using these criteria, piezoelectric aluminum nitride is shown to be an excellent candidate. The results of tests on an aluminum-nitride- based transducer operating in a nuclear reactor are also presented. We demonstrate the tolerance of single-crystal piezoelectric aluminum nitride after fast and thermal neutron fluences of 1.85 x 1018 neutron/cm2 and 5.8 x 1018 neutron/cm2, respectively, and a gamma dose of 26.8 MGy. The radiation hardness of AlN is most evident from the unaltered piezoelectric coefficient d33, which measured 5.5 pC/N after a fast and thermal neutron exposure in a nuclear reactor core for over 120 MWh, in agreement with the published literature value. The results offer potential for improving reactor safety and furthering the understanding of radiation effects on materials by enabling structural health monitoring and NDE in spite of the high levels of radiation and high temperatures, which are known to destroy typical commercial ultrasonic transducers.
Keywords :
III-V semiconductors; aluminium compounds; crystal defects; fission reactor materials; gamma-ray effects; piezoelectric materials; radiation hardening; ultrasonic materials testing; ultrasonic transducers; AlN; NDE; aluminum-nitride- based transducer; commercial ultrasonic transducers; gamma dose; harsh radiation environments; material characterization; nondestructive evaluation; nuclear reactor core; piezoelectric bulk single-crystal aluminum nitride; piezoelectric coefficient; piezoelectric materials; radiation absorbed dose 26.8 MGy; radiation effects; radiation hardness; radiation levels; radiation tolerance; reactor safety; single-crystal piezoelectric aluminum nitride; structural health monitoring; thermal neutron exposure; thermal neutron fluences; Acoustics; Atomic measurements; III-V semiconductor materials; Inductors; Neutrons; Piezoelectric materials;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2014.3020
Filename :
6838816
Link To Document :
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