Acoustic Loss in LiNb1−xTaxO3 at Temperatures up to 900 °C

U. Yakhnevych, Vanik Sargsyan, F. El Azzouzi, Alexander Kapp, Felix Bernhardt, Y. Suhak, S. Ganschow, H. Schmidt, Simone Sanna, H. Fritze
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Abstract

Lithium niobate‐lithium tantalate solid solutions are new piezoelectric crystals that enable to combine the advantages of their edge compounds with respect to the high thermal stability of lithium tantalate and the high Curie temperature of lithium niobate. This study aims to determine of the acoustic losses of bulk resonators with varying Nb/Ta ratios and their correlation with charge transport at temperatures up to 900 °C and at reduced oxygen partial pressures. Techniques such as resonant piezoelectric spectroscopy and contactless resonant ringdown spectroscopy are used to determine the acoustic losses. Further, the electrical conductivity is determined by impedance spectroscopy. A one‐dimensional physical model for vibrating plates is fitted to the data to extract key parameters such as piezoelectric coefficients and elastic modulus as a function of temperature. Noncontacting determination of loss excludes the impact of metal electrodes and reveals up to 300 °C values in the order of Akhiezer‐type losses. Resonators operated at 2 MHz show a rapid loss increase above about 450 °C, which is attributed to the piezoelectric/carrier relaxation. The latter follows from atomistic models using the key parameters mentioned and the electrical conductivity. The modeling includes variation of the resonance frequency and suggests higher resonance frequencies to lower the acoustic loss.
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温度高达 900 °C 时 LiNb1-xTaxO3 中的声损耗
铌酸锂-钽酸锂固溶体是一种新型压电晶体,可将钽酸锂的高热稳定性和铌酸锂的高居里温度这两种边缘化合物的优点结合起来。本研究旨在确定具有不同 Nb/Ta 比率的体谐振器的声波损耗及其与电荷传输的相关性,温度最高可达 900 °C,氧分压降低。共振压电光谱仪和非接触式共振振铃光谱仪等技术被用来测定声损耗。此外,还通过阻抗光谱测定了导电性。振动板的一维物理模型与数据拟合,以提取关键参数,如压电系数和弹性模量与温度的函数关系。非接触式损耗测定排除了金属电极的影响,并显示了高达 300 °C 的 Akhiezer 型损耗值。在 2 MHz 频率下工作的谐振器在 450 °C以上时损耗会迅速增加,这归因于压电/载流子弛豫。后者源于使用上述关键参数和导电率的原子模型。建模包括共振频率的变化,并建议采用更高的共振频率来降低声学损耗。
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