Voir la notice de l'article provenant de la source Math-Net.Ru
@article{JSFU_2015_8_1_a1, author = {Sergey I. Burkov and Olga P. Zolotova and Pavel P. Turchin}, title = {Influence of uniaxial pressure on elastic waves propagation in piezoelectric layered structures {``Y-cut} langasite/fused silica''}, journal = {\v{Z}urnal Sibirskogo federalʹnogo universiteta. Matematika i fizika}, pages = {7--21}, publisher = {mathdoc}, volume = {8}, number = {1}, year = {2015}, language = {en}, url = {http://geodesic.mathdoc.fr/item/JSFU_2015_8_1_a1/} }
TY - JOUR AU - Sergey I. Burkov AU - Olga P. Zolotova AU - Pavel P. Turchin TI - Influence of uniaxial pressure on elastic waves propagation in piezoelectric layered structures ``Y-cut langasite/fused silica'' JO - Žurnal Sibirskogo federalʹnogo universiteta. Matematika i fizika PY - 2015 SP - 7 EP - 21 VL - 8 IS - 1 PB - mathdoc UR - http://geodesic.mathdoc.fr/item/JSFU_2015_8_1_a1/ LA - en ID - JSFU_2015_8_1_a1 ER -
%0 Journal Article %A Sergey I. Burkov %A Olga P. Zolotova %A Pavel P. Turchin %T Influence of uniaxial pressure on elastic waves propagation in piezoelectric layered structures ``Y-cut langasite/fused silica'' %J Žurnal Sibirskogo federalʹnogo universiteta. Matematika i fizika %D 2015 %P 7-21 %V 8 %N 1 %I mathdoc %U http://geodesic.mathdoc.fr/item/JSFU_2015_8_1_a1/ %G en %F JSFU_2015_8_1_a1
Sergey I. Burkov; Olga P. Zolotova; Pavel P. Turchin. Influence of uniaxial pressure on elastic waves propagation in piezoelectric layered structures ``Y-cut langasite/fused silica''. Žurnal Sibirskogo federalʹnogo universiteta. Matematika i fizika, Tome 8 (2015) no. 1, pp. 7-21. http://geodesic.mathdoc.fr/item/JSFU_2015_8_1_a1/
[1] Sh. Jiang, X. Gong, X. Guo, X. Wang, “Potential application of graphene nanomechanical resonator as pressure sensor”, Solid State Communications, 193:9 (2014), 30–33 | DOI
[2] J. Wang, Zh. Huang, H. Duan, Sh. Yu, X. Feng, G. Wang, W. Zhang, T. Wang, “Surface stress effect in mechanics of nanostructured materials”, Acta Mechanica Solida Sinica, 24:1 (2011), 52–82 | DOI
[3] K. A. Snook, P. W. Rehrig, W. S. Hackenberger, R. J. Meyer, D. Markley, “Tailored single crystal orientations for improved tonpilz transducer performance”, Proc. IEEE Ultrasonics Symp. (Vancouver, Canada, 2006), 359–362
[4] Y. Fan, X. Ji, X. Liu, P. Cai, “The nonlinear analysis of elastic wave of piezoelectric crystal plate with perturbation method”, Wave Motion, 51:5 (2014), 798–803 | DOI
[5] F. Kubat, W. Ruile, T. Hesjedal, J. Stotz, U. Rösler, L. M. Reindl, “Calculation and experimental verification of the acoustic stress at GHZ frequencies in SAW resonators”, IEEE Trans. on Ultrason., Ferroel. and Freq. Control, 51:11 (2004), 1437–1448 | DOI
[6] Y. Jing, J. Chen, X. Gong, J. Duan, “Stress-induced frequency shifts in rotated Y-cut langasite resonators with electrodes considered”, IEEE Trans. on Ultrason., Ferroel. and Freq. Control, 54:5 (2007), 906–909 | DOI
[7] J. A. Kosinski, R. A. Pastore (Jr.), J. Yang, X. Yang, J. A. Turner, “Stress-induced frequency shifts of degenerate thickness-shear modes in rotated Y-cut quartz resonators”, IEEE Trans. on Ultrason., Ferroel. and Freq. Control, 57:8 (2010), 1880–1883 | DOI
[8] J. A. Kosinski, R. A. Pastore (Jr.), X. Yang, J. Yang, J. A. Turner, “Stress-induced frequency shifts in langasite thickness-mode resonators”, IEEE Trans. on Ultrason., Ferroel. and Freq. Control, 59:1 (2009), 129–135 | DOI
[9] H. Zhang, J. A. Kosinski, “Analysis of contributions of nonlinear material constants to stress-induced velocity shifts of quartz and langasite surface acoustic wave resonators”, IEEE Trans. on Ultrason., Ferroel. and Freq. Control, 60:5 (2013), 975–985 | DOI
[10] S. I. Burkov, B. P. Sorokin, K. S. Aleksandrov, A. A. Karpovich, “Reflection and refraction of bulk acoustic waves in piezoelectrics under uniaxial stress”, Acoustical Physics, 55:2 (2009), 178–185 | DOI
[11] S. I. Burkov, B. P. Sorokin, A. A. Karpovich, K. S. Aleksandrov, “Reflection and refraction of bulk acoustic waves in piezoelectric crystals under the action of bias electric field and uniaxial pressure”, Proc. IEEE Ultrasonics Symp. (Beijing, China, 2008), 2161–2164
[12] H. Liu, Z. K. Wang, T. J. Wang, “Effect of initial stress on the propagation behavior of Love waves in a layered piezoelectric structure”, Int. J. of Solids and Structures, 38 (2001), 37–51 | DOI
[13] Z. H. Qian, F. Jin, Z. K. Wang, K. Kishimoto, “Love waves propagation in a piezoelectric layered structure with initial stresses”, Acta Mech., 171 (2004), 41–57 | DOI
[14] M. El Hakiki, O. Elmazria, F. Bénédic, P. Nicolay, D.Monéger, R. Azouani, “Diamond film on Langasite substrate for surface acoustic wave devices operating in high frequency and high temperature”, Diamond and Related Materials, 16:4–7 (2007), 966–969 | DOI
[15] G. Tortissier, L. Blanc, A. Tetelin, J.-L. Lachaud, M. Benoit, V. Conédéra, C. Dejous, D. Rebière, “Langasite based surface acoustic wave sensors for high temperature chemical detection in harsh environment: Design of the transducers and packaging”, Sensors and Actuators B: Chemical, 156:2 (2011), 510–516 | DOI
[16] N. Naumenko, L. Solie, “Optimal cuts of langasite, La$_3$Ga$_5$SiO$_{14}$ for SAW devices”, IEEE Trans. on Ultrason., Ferroel. and Freq. Control, 48:2 (2001), 530–537 | DOI
[17] P. Zheng, D. W. Greve, I. J. Oppenheim, “Langasite surface acoustic wave gas sensors: modeling and verification”, IEEE Trans. on Ultrason., Ferroel. and Freq. Control, 60:3 (2013), 579–586 | DOI
[18] A. Talbi, F. Sarry, L. Le Brizoual, O. Elmazria, P. Alnot, “Sezawa mode SAW pressure sensors based on ZnO/Si structure”, IEEE Trans. on Ultrason., Ferroel. and Freq. Control, 51:11 (2004), 1421–1426 | DOI
[19] R. Duhamel, L. Robert, Hongguang Jia, Feng Li, F. Lardet-Vieudrin, J.-F. Manceau, F. Bastien, “Sensitivity of a Lamb wave sensor with 2 $\mu$m AlN membrane”, Ultrasonics, 44, Supplement (2006), e893–e897 | DOI
[20] K. S. Aleksandrov, B. P. Sorokin, S. I. Burkov, Effective piezoelectric crystals for acoustoelectronics, piezotechnics and sensors, v. 2, SB RAS Publishing House, Novosibirsk, 2008 (in Russian)
[21] S. I. Burkov, B. P. Sorokin, A. A. Karpovich, K. S. Aleksandrov, “The influence of static homogeneous fields on the properties of SAW in piezoelectrics”, Ferroelectrics Letters, 14:5/6 (1992), 99–113 | DOI
[22] S. I. Burkov, O. P. Zolotova, B. P. Sorokin, P. P. Turchin, “Analysis of the effect of homogeneous mechanical stress on the acoustic wave propagation in the "La$_3$Ga$_5$SiO$_{14}$/fused silica" piezoelectric layered structures”, Ultrasonics, 55:1 (2015), 104–112 | DOI
[23] B. P. Sorokin, M. P. Zaitseva, Yu. I. Kokorin, S.İ. Burkov, B. V. Sobolev, N. A. Chetvergov, “Anisotropy of the bulk acoustic wave velocity under the electric field in the sillenite structure piezoelectric crystals”, Soviet Phys. Acoust., 32:5 (1986), 664–666 (in Russian)
[24] O. P. Zolotova, S. I. Burkov, B. P. Sorokin, A. V. Telichko, “Elastic waves in piezoelectric layered structures”, J. Siberian Federal University. Mathematics Physics, 5:2 (2012), 164–186
[25] K. S. Aleksandrov, B. P. Sorokin, P. P. Turchin, D. A. Glushkov, “Non-linear piezoelectricity in La$_3$Ga$_5$SiO$_{14}$ piezoelectric single crystal”, Ferroelectrics Letters, 14:5/6 (1992), 115–125 | DOI
[26] H. J. McSkimin, “Measurement of elastic constants at low temperatures by means of ultrasonic waves–data for silicon and germanium single crystals, and for fused silica”, J. Appl. Phys., 24:8 (1953), 988–997 | DOI
[27] I. V. Anisimkin, “New type of an acoustic plate mode: quasi-longitudinal normal wave”, Ultrasonics, 42:10 (2004), 1095–1099 | DOI
[28] V. I. Anisimkin, “General properties of the Anisimkin Jr plate modes”, IEEE Trans. on Ultrason., Ferroel. and Freq. Control, 57:9 (2010), 2028–2034 | DOI
[29] V. I. Anisimkin, “New acoustic plate modes with quasi-linear polarizations orientation”, IEEE Trans. on Ultrason., Ferroel. and Freq. Control, 59:10 (2012), 2363–2367 | DOI
[30] S. I. Burkov, O. P. Zolotova, B. P. Sorokin, P. P. Turchin, “Calculation of thermostable directions and the effect of external electric field on the propagation of Lamb and SH waves in a langasite crystal plate”, Acoust. Phys., 58:6 (2012), 650–657 | DOI