Title :
Evaluation and improvement of optical-grade LiTaO/sub 3/ single crystals by the LFB ultrasonic material characterization system
Author :
Kushibiki, Jun-ichi ; Ohashi, Yuji ; Ono, Yuu ; Sasamata, Takeji
Author_Institution :
Dept. of Electr. Eng., Tohoku Univ., Sendai, Japan
fDate :
7/1/2002 12:00:00 AM
Abstract :
This paper describes the first demonstration for feeding back the results obtained by the line-focus-beam ultrasonic material characterization (LFB-UMC) system to the crystal growth conditions for optical-grade LiTaO/sub 3/ crystals and for achieving much improved homogeneity of chemical composition. We evaluated a commercially available optical-grade LiTaO/sub 3/ single crystal with a nominally congruent composition in detail, by measuring distributions of the velocities of leaky surface acoustic waves (LSAW) along the Y-axis direction for a Z-cut specimen plate prepared from the crystal grown in the Y-axis direction. We detected an increment of 0.66 m/s in LSAW velocity along the pulling axis direction corresponding to 0.024 mol% in Li/sub 2/O content, and the compositional gradient was +0.346/spl times/10/sup -3/ (Li/sub 2/O-mol%)/mm. By experimentally obtaining the starting material composition dependence of the gradients, we developed a method of estimating the proper composition ratio that would lead to a more homogeneous crystal. We grew a new crystal with a Li/sub 2/O content of 48.47 mol%, resulting in a very small compositional gradient of +0.046/spl times/10/sup -3/ (Li/sub 2/O-mol%)/mm and a compositional homogeneity of less than 0.012 Li/sub 2/O-mol% in a Z-cut area of 50 mm/spl times/50 mm used for device substrates.
Keywords :
acoustic microscopy; crystal growth from melt; ferroelectric materials; lithium compounds; optical materials; surface acoustic waves; ultrasonic focusing; ultrasonic materials testing; Czochralski method; Li/sub 2/O content; LiTaO/sub 3/; Y-axis direction; Z-cut specimen plate; chemical composition homogeneity; composition ratio; compositional gradient; compositional homogeneity; crystal growth conditions; device substrates; ferroelectric single crystals; leaky surface acoustic wave velocity distributions; line-focus-beam acoustic microscopy; line-focus-beam ultrasonic material characterization system; nominally congruent composition; optical-grade LiTaO/sub 3/ single crystals; pulling axis direction; starting material composition; Acoustic measurements; Chemicals; Composite materials; Crystalline materials; Crystals; Optical materials; Optical surface waves; Surface acoustic waves; Ultrasonic variables measurement; Velocity measurement;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2002.1020160