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Loss characterisation of piezocrystals under elevated environmental conditions

机译:高温环境下压电晶体的损耗表征

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Relaxor-based piezoelectric single crystals have experienced three generations of development, from binary (e.g. PMN-PT) through ternary (e.g. PIN-PMN-PT) to doped ternary (e.g. Mn:PIN-PMN-PT). With improved composition and other relevant factors, these materials exhibit an extraordinary degree of piezoelectricity and ultrahigh electromechanical coupling coefficients, making them suitable for applications requiring high sensitivity and high bandwidth. With further increases in rhombohedral-to-tetragonal phase transition temperature (TRT), coercive field (EC) and mechanical quality factor (Qm), these piezocrystals can now be expected to work at elevated temperature, T, and pressure, P, and with high electric field drive. However, in operation, material properties can vary and performance can degrade significantly because of these elevated conditions, and the situation can be exacerbated by losses in the materials, necessitating proper characterisation of loss factors. In this paper, we report an investigation of three different loss characterisation methods then propose one combined method, demonstrating its use on TE-mode plates of PIN-PMN-PT and Mn:PIN-PMN-PT. Characterisation was performed using impedance spectroscopy for 20°C ≤ T ≤ 100°C and 0 MPa ≤ P ≤ 60 MPa. Results relating to dielectric, elastic and piezoelectric losses are reported, with detailed analysis and comparisons.
机译:基于弛豫的压电单晶经历了三代的发展,从二元(例如PMN-PT)到三元(例如PIN-PMN-PT)到掺杂的三元(例如Mn:PIN-PMN-PT)。凭借改进的成分和其他相关因素,这些材料表现出了非凡的压电性和超高的机电耦合系数,使其适合需要高灵敏度和高带宽的应用。随着菱形到四边形相变温度(TRT),矫顽场(EC)和机械品质因数(Qm)的进一步提高,现在可以预期这些压电晶体可以在较高的温度T和压力P下工作。高电场驱动。但是,在操作中,由于这些升高的条件,材料的性能可能会发生变化,性能可能会大大降低,并且材料的损耗可能会加剧这种情况,从而需要正确表征损耗因子。在本文中,我们报告了对三种不同损耗表征方法的研究,然后提出了一种组合方法,证明了其在PIN-PMN-PT和Mn:PIN-PMN-PT的TE模式板上的使用。使用阻抗谱在20°C≤T≤100℃和0 MPa≤P≤60 MPa的条件下进行表征。报告了有关介电,弹性和压电损耗的结果,并进行了详细的分析和比较。

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