DocumentCode :
1559903
Title :
Development of the line-focus-beam ultrasonic material characterization system
Author :
Kushibiki, Jun-ichi ; Ono, Yuu ; Ohashi, Yuji ; Arakawa, Mototaka
Author_Institution :
Dept. of Electr. Eng., Tohoku Univ., Sendai, Japan
Volume :
49
Issue :
1
fYear :
2002
Firstpage :
99
Lastpage :
113
Abstract :
A line-focus-beam ultrasonic material characterization (LFB-UMC) system has been developed to evaluate large diameter crystals and wafers currently used in electronic devices. The system enables highly accurate detection of slight changes in the physical and chemical properties in and among specimens. Material characterization proceeds by measuring the propagation characteristics, viz., phase velocity and attenuation, of Rayleigh-type leaky surface acoustic waves (LSAWs) excited on the water-loaded specimen surface. The measurement accuracy depends mainly upon the translation accuracy of the mechanical stages used in the system and the stability of the temperature environment. New precision mechanical translation stages have been developed, and the mechanical system, including the ultrasonic device and the specimen, has been installed in a temperature-controlled chamber to reduce thermal convection and conduction at the specimen. A method for precisely measuring temperature and longitudinal velocity in the water couplant has been developed, and a measurement procedure for precisely measuring the LSAW velocities has been completed, achieving greater relative accuracy to better than /spl plusmn/0.002% at any single chosen point and /spl plusmn/0.004% for two-dimensional measurements over a scanning area of a 200-mm diameter silicon single-crystal substrate. The system was developed to address various problems arising in science and industry associated with the development of materials and device fabrication processes.
Keywords :
Rayleigh waves; acoustic microscopy; surface acoustic waves; ultrasonic focusing; ultrasonic materials testing; ultrasonic measurement; 200 mm; LSAW velocities; Rayleigh-type leaky surface acoustic waves; attenuation; large diameter crystals; large diameter wafers; line-focus-beam system; longitudinal velocity; measurement accuracy; mechanical translation stages; phase velocity; propagation characteristics; temperature environment; temperature-controlled chamber; thermal conduction; thermal convection; translation accuracy; ultrasonic material characterization system; water-loaded specimen; Acoustic measurements; Acoustic signal detection; Area measurement; Chemicals; Crystalline materials; Crystals; Phase change materials; Surface acoustic wave devices; Ultrasonic variables measurement; Velocity measurement;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/58.981388
Filename :
981388
Link To Document :
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