2002
DOI: 10.1109/tuffc.2002.1020159
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A method of determining acoustical physical constants for piezoelectric materials by line-focus-beam acoustic microscopy

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Cited by 17 publications
(8 citation statements)
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“…Therefore, in LiNbO 3 the bonding between the atoms along the c-direction is stronger than that between the atoms along the a-b plane. Takanaga et al 15 The third-order elastic constants evaluated in the present work are given in Table 4 along with the reported values of Cho et al 20 , Nakagawa et al 21 and Philip et al 22 .The results obtained in the present work are of the same order with those of Cho et al 20 . All the thirdorder elastic constants of LiNbO 3 are negative except C 444.…”
Section: Resultssupporting
confidence: 84%
See 1 more Smart Citation
“…Therefore, in LiNbO 3 the bonding between the atoms along the c-direction is stronger than that between the atoms along the a-b plane. Takanaga et al 15 The third-order elastic constants evaluated in the present work are given in Table 4 along with the reported values of Cho et al 20 , Nakagawa et al 21 and Philip et al 22 .The results obtained in the present work are of the same order with those of Cho et al 20 . All the thirdorder elastic constants of LiNbO 3 are negative except C 444.…”
Section: Resultssupporting
confidence: 84%
“…Low temperature lattice thermal expansion of trigonal LiNbO 3 is also obtained. The results are compared with those obtained by other workers [15][16][17][18][19][20][21][22] .…”
Section: Introductionmentioning
confidence: 88%
“…2 schematically illustrates the calibration method for the LFB-UMC system. First, the acoustical physical constants of standard specimens (elastic constants c E , piezoelectric constants e, dielectric constants ε S , and density ρ) must be accurately determined in advance [13], [15], [21]- [23]. Using the acoustical physical constants, we conducted calculations to obtain the theoretical values of the LSAW propagation characteristics according to the analytical procedure described in the literature [24].…”
Section: Calibration Methodsmentioning
confidence: 99%
“…During our research in evaluating various crystals, we found that there was a scatter in velocity on the order of 0.1% between systems for the calibrated results using such standard specimens. This becomes a major problem when determining the relationships between chemical and physical properties [3], [10], and for elastic constants [16]- [21] that require high measurement accuracy.…”
Section: Introductionmentioning
confidence: 99%
“…LiNbO 3 和 LiTaO 3 具有较好的介电、压电、非 线性光学、光折变和高损失阈等特性, 广泛应用于 电光设备和光学器件 [1][2] 。LiNbO 3 和 LiTaO 3 晶体具 有较高声波速度和良好的机电耦合性能, 可作为薄 膜、激光和智能材料 [3][4] 。同时, LiNbO 3 和 LiTaO 3 晶体居里温度分别为 1169 [5] 和 618℃ [6] , 杨氏模量 分别为 247.6 和 301.8 GPa, 并且整体显示脆性 [7] 。 理论研究提示 LiNbO 3 晶体高压下有稳定的结构 [8][9] , 约在 25 GPa 时由三方晶系 R3c 转变成正交晶系 Pnma, LiTaO 3 晶体相变压强约为 37.9 GPa [10][11][12][13] 。通 过金属 Mn 原子代替 LiNbO 3 晶体的 Li、Nb 位原子, 可研究其电子结构、磁性和光学性质, 并能有效地提 高 LiNbO 3 晶体的物理性能 [14] 。据 Reichenbach 等 [15] 报道, Mg 掺杂 LiNbO 3 和 LiTaO 3 可改变其光致发光 特性。Zhao 等 [16] 通过第一性原理研究认为, 双金属 Fe:Mg 掺杂 LiNbO 3 晶体后, 增强了晶体在可见光区 间的吸收性能, 从而加强了光折射和光电导效应。 Mamoun 等 [17] 计算了 LiNbO 3 晶体光学性质以及低 频时寻常光(O 光)和非寻常光(e 光)折射率的变化趋 势。本课题组前期报道了高压下 LiNbO 3 晶体电子 结构和光学性质 [18] 。LiNbO 3 和 LiTaO 3 晶体相似从 而导致光学性质几乎一致, 但这两种晶体的光折射 现象尚没有全面研究。 LiNbO 3 和 LiTaO 3 作为良好压电材料, 其平面 声波在实际应用中有重要意义。有文献报道, 利用 弹性模量计算 LiNbO 3 和 LiTaO 3 声波速度 [7] 。但目 前为止, 对平面声波的研究仍局限于特定的晶向或 晶面 [3][4][19][20][21][22][23]…”
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