DocumentCode :
825570
Title :
Proton-exchanged 36° Y-X LiTaO3 waveguides for surface acoustic wave
Author :
Chung-Jen Chung ; Kuo-Sheng Kao ; Chien-Chuan Cheng ; Ying-Chung Chen
Author_Institution :
Dept. of Electr. Eng., Nat. Sun Yat-Sen Univ., Kaohsiung, Taiwan
Volume :
53
Issue :
2
fYear :
2006
Firstpage :
502
Lastpage :
505
Abstract :
A nontoxic proton source, octanoic acid, was adopted to fabricate proton-exchanged (PE) waveguides in 36° Y-X lithium tantalate (LiTaO3) substrates. The PE ability of octanoic acid on LiTaO3, the penetration depth, was investigated by secondary-ion mass spectrometry (SIMS). The penetration depth of hydrogen ion exhibited an obviously step-like profile, which will be excellent for waveguide application. The relationship between waveguide depth (d) and exchanging time (t) was represented by d = 0.0653 × √t at T = 200°C. To deserve to be mentioned, the octanoic acid has a slight dissociation coefficient and low activation energy, thus the accurate waveguide depth control can be obtained. For the application of acoustic wave guided acousto-optic devices, the leaky surface acoustic wave (LSAW) properties of PE 36° Y-X LiTaO3 waveguides were investigated. The phase velocity slightly decreased with the increase of kd, where k was wavenumber. An indispensable parameter of acoustic wave device, the temperature coefficient of frequency (TCF), calculated from the frequency change of the output of LSAW delay line showed an increase with increased kd.
Keywords :
acoustic wave velocity; ion exchange; lithium compounds; secondary ion mass spectra; surface acoustic wave waveguides; surface acoustic waves; 200 degC; LSAW; LiTaO/sub 3/; SIMS; acoustic wave device; activation energy; dissociation coefficient; exchanging time; leaky surface acoustic wave; nontoxic proton source; octanoic acid; penetration depth; phase velocity; proton-exchanged waveguides; secondary-ion mass spectrometry; step-like profile; waveguide depth; waveguide depth control; wavenumber; Acoustic waveguides; Acoustic waves; Acoustooptic devices; Frequency; Hydrogen; Lithium compounds; Mass spectroscopy; Protons; Surface acoustic wave devices; Temperature; Energy Transfer; Equipment Design; Equipment Failure Analysis; Lithium; Materials Testing; Optics; Oxides; Protons; Tantalum; Transducers;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2006.1593391
Filename :
1593391
Link To Document :
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