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Functional Piezocrystal Characterisation under Varying Conditions

机译:在不同条件下的功能压电晶体表征

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Piezocrystals, especially the relaxor-based ferroelectric crystals, have been subject to intense investigation and development within the past three decades, motivated by the performance advantages offered by their ultrahigh piezoelectric coefficients and higher electromechanical coupling coefficients than piezoceramics. Structural anisotropy of piezocrystals also provides opportunities for devices to operate in novel vibration modes, such as the d36 face shear mode, with domain engineering and special crystal cuts. These piezocrystal characteristics contribute to their potential usage in a wide range of low- and high-power ultrasound applications. In such applications, conventional piezoelectric materials are presently subject to varying mechanical stress/pressure, temperature and electric field conditions. However, as observed previously, piezocrystal properties are significantly affected by a single such condition or a combination of conditions. Laboratory characterisation of the piezocrystal properties under these conditions is therefore essential to fully understand these materials and to allow electroacoustic transducer design in realistic scenarios. This will help to establish the extent to which these high performance piezocrystals can replace conventional piezoceramics in demanding applications. However, such characterisation requires specific experimental arrangements, examples of which are reported here, along with relevant results. The measurements include high frequency-resolution impedance spectroscopy with the piezocrystal material under mechanical stress 0–60 MPa, temperature 20–200 °C, high electric AC drive and DC bias. A laser Doppler vibrometer and infrared thermal camera are also integrated into the measurement system for vibration mode shape scanning and thermal conditioning with high AC drive. Three generations of piezocrystal have been tested: (I) binary, PMN-PT; (II) ternary, PIN-PMN-PT; and (III) doped ternary, Mn:PIN-PMN-PT. Utilising resonant mode analysis, variations in elastic, dielectric and piezoelectric constants and coupling coefficients have been analysed, and tests with thermal conditioning have been carried out to assess the stability of the piezocrystals under high power conditions.
机译:压电晶体,尤其是基于弛豫的铁电晶体,在过去的三十年中受到了广泛的研究和开发,这是由于其超高压电系数和比压电陶瓷更高的机电耦合系数所带来的性能优势。压电晶体的结构各向异性也为设备提供了以新颖的振动模式(例如d 36 面剪切模式)进行工作的机会,并具有磁畴工程和特殊的晶体切割。这些压电晶体特性有助于其在各种低功率和高功率超声应用中的潜在用途。在这样的应用中,常规的压电材料目前经受变化的机械应力/压力,温度和电场条件。然而,如先前观察到的,压电晶体的性质受单个这样的条件或条件的组合的显着影响。因此,在这些条件下对压电晶体特性进行实验室表征对于全面了解这些材料并在实际情况下进行电声换能器设计至关重要。这将有助于确定在要求苛刻的应用中这些高性能压电晶体可以替代传统压电陶瓷的程度。但是,这种表征需要特定的实验安排,有关示例,请参见此处的示例以及相关结果。测量包括使用压电晶体材料在0–60 MPa的机械应力,20–200°C的温度,高电交流驱动和直流偏置的情况下进行的高频分辨率阻抗谱分析。激光多普勒测振仪和红外热像仪也集成到测量系统中,用于振动模式形状扫描和高AC驱动的热调节。已经测试了三代压电晶体:(I)二元,PMN-PT; (II)三进制,PIN-PMN-PT; (III)掺杂的三元Mn:PIN-PMN-PT。利用共振模式分析,已经分析了弹性,介电常数和压电常数以及耦合系数的变化,并进行了热调节测试以评估压电晶体在高功率条件下的稳定性。

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