Zhang Shujun, Li Fei, Jiang Xiaoning, Kim Jinwook, Luo Jun, Geng Xuecang
Materials Research Institute, Pennsylvania State University, University Park, PA, 16802, US.
Electronic Mater. Res. Lab, Key Lab Ministry of Education and International Center for Dielectric Research, Xi'an Jiaotong University, Xi'an 710049, China.
Prog Mater Sci. 2015 Mar 1;68:1-66. doi: 10.1016/j.pmatsci.2014.10.002.
Relaxor-PbTiO (PT) based ferroelectric crystals with the perovskite structure have been investigated over the last few decades due to their ultrahigh piezoelectric coefficients ( > 1500 pC/N) and electromechanical coupling factors ( > 90%), far outperforming state-of-the-art ferroelectric polycrystalline Pb(Zr,Ti)O ceramics, and are at the forefront of advanced electroacoustic applications. In this review, the performance merits of relaxor-PT crystals in various electroacoustic devices are presented from a piezoelectric material viewpoint. Opportunities come from not only the ultrahigh properties, specifically coupling and piezoelectric coefficients, but through novel vibration modes and crystallographic/domain engineering. Figure of merits (FOMs) of crystals with various compositions and phases were established for various applications, including medical ultrasonic transducers, underwater transducers, acoustic sensors and tweezers. For each device application, recent developments in relaxor-PT ferroelectric crystals were surveyed and compared with state-of-the-art polycrystalline piezoelectrics, with an emphasis on their strong anisotropic features and crystallographic uniqueness, including engineered domain - property relationships. This review starts with an introduction on electroacoustic transducers and the history of piezoelectric materials. The development of the high performance relaxor-PT single crystals, with a focus on their uniqueness in transducer applications, is then discussed. In the third part, various FOMs of piezoelectric materials for a wide range of ultrasound applications, including diagnostic ultrasound, therapeutic ultrasound, underwater acoustic and passive sensors, tactile sensors and acoustic tweezers, are evaluated to provide a thorough understanding of the materials' behavior under operational conditions. Structure-property-performance relationships are then established. Finally, the impacts and challenges of relaxor-PT crystals are summarized to guide on-going and future research in the development of relaxor-PT crystals for the next generation electroacoustic transducers.
在过去几十年中,基于弛豫铁电体-钛酸铅(PT)的钙钛矿结构铁电晶体因其超高的压电系数(>1500 pC/N)和机电耦合因子(>90%)而受到研究,其性能远远超过了目前最先进的铁电多晶锆钛酸铅(Pb(Zr,Ti)O)陶瓷,处于先进电声应用的前沿。在这篇综述中,从压电材料的角度介绍了弛豫铁电体-钛酸铅晶体在各种电声器件中的性能优势。机遇不仅来自于超高的性能,特别是耦合系数和压电系数,还来自于新颖的振动模式以及晶体学/畴工程。针对包括医用超声换能器、水下换能器、声学传感器和镊子在内的各种应用,建立了具有不同成分和相的晶体的品质因数(FOM)。对于每种器件应用,调查了弛豫铁电体-钛酸铅铁电晶体的最新进展,并与目前最先进的多晶压电材料进行了比较,重点关注它们强烈的各向异性特征和晶体学独特性,包括设计的畴-性能关系。这篇综述首先介绍了电声换能器和压电材料的历史。然后讨论了高性能弛豫铁电体-钛酸铅单晶的发展,重点是它们在换能器应用中的独特性。在第三部分中,评估了用于广泛超声应用(包括诊断超声、治疗超声、水声和无源传感器、触觉传感器以及声学镊子)的压电材料的各种品质因数,以全面了解材料在工作条件下的行为。随后建立了结构-性能-性能关系。最后,总结了弛豫铁电体-钛酸铅晶体的影响和挑战,以指导在开发用于下一代电声换能器的弛豫铁电体-钛酸铅晶体方面正在进行的和未来的研究。