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Relaxor-based ferroelectric single crystals: growth domain engineering characterization and applications

机译:基于弛豫的铁电单晶:生长畴工程表征和应用

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摘要

In the past decade, domain engineered relaxor-PT ferroelectric single crystals, including (1-x)Pb(Mg1/3Nb2/3)O3-xPbTiO3 (PMN-PT), (1-x)Pb(Zn1/3Nb2/3)O3-xPbTiO3 (PZN-PT) and (1-x-y)Pb(In1/2Nb1/2)O3-yPb(Mg1/3Nb2/3)O3-xPbTiO3 (PIN-PMN-PT), with compositions near the morphotropic phase boundary (MPB) have triggered a revolution in electromechanical devices owing to their giant piezoelectric properties and ultra-high electromechanical coupling factors. Compared to traditional PbZr1-xTixO3 (PZT) ceramics, the piezoelectric coefficient d33 is increased by a factor of 5 and the electromechanical coupling factor k33 is increased from < 70% to > 90%. Many emerging rich physical phenomena, such as charged domain walls, multi-phase coexistence, domain pattern symmetries, etc., have posed challenging fundamental questions for scientists. The superior electromechanical properties of these domain engineered single crystals have prompted the design of a new generation electromechanical devices, including sensors, transducers, actuators and other electromechanical devices, with greatly improved performance. It took less than 7 years from the discovery of larger size PMN-PT single crystals to the commercial production of the high-end ultrasonic imaging probe “PureWave”. The speed of development is unprecedented, and the research collaboration between academia and industrial engineers on this topic is truly intriguing. It is also exciting to see that these relaxor-PT single crystals are being used to replace traditional PZT piezoceramics in many new fields outside of medical imaging. The new ternary PIN-PMN-PT single crystals, particularly the ones with Mn-doping, have laid a solid foundation for innovations in high power acoustic projectors and ultrasonic motors, hinting another revolution in underwater SONARs and miniature actuation devices. This article intends to provide a comprehensive review on the development of relaxor-PT single crystals, spanning material discovery, crystal growth techniques, domain engineering concept, and full-matrix property characterization all the way to device innovations. It outlines a truly encouraging story in materials science in the modern era. All key references are provided and 30 complete sets of material parameters for different types of relaxor-PT single crystals are listed in the . It is the intension of this review article to serve as a resource for those who are interested in basic research and practical applications of these relaxor-PT single crystals. In addition, possible mechanisms of giant piezoelectric properties in these domain-engineered relaxor-PT systems will be discussed based on contributions from polarization rotation and charged domain walls.
机译:在过去的十年中,领域工程学的弛豫PT铁电单晶包括(1-x)Pb(Mg1 / 3Nb2 / 3)O3-xPbTiO3(PMN-PT),(1-x)Pb(Zn1 / 3Nb2 / 3) O3-xPbTiO3(PZN-PT)和(1-xy)Pb(In1 / 2Nb1 / 2)O3-yPb(Mg1 / 3Nb2 / 3)O3-xPbTiO3(PIN-PMN-PT),其成分接近同晶相边界(MPB)由于其巨大的压电性能和超高的机电耦合系数,引发了机电设备的革命。与传统的PbZr1-xTi x O 3 (PZT)陶瓷相比,压电系数d 33 增大了5倍,机电耦合因子k 33 从<70%增加到> 90%。许多新兴的丰富物理现象,例如带电畴壁,多相共存,畴模式对称性等,对科学家提出了具有挑战性的基本问题。这些域工程单晶的优异的机电性能促使人们设计出性能大大提高的新一代机电设备,包括传感器,换能器,致动器和其他机电设备。从发现更大尺寸的PMN-PT单晶到高端超声波成像探头“ PureWave”的商业生产,用了不到7年的时间。发展的速度是空前的,学术界和工业工程师之间在该主题上的研究合作确实令人着迷。令人兴奋的是,在医学成像之外的许多新领域中,这些张弛性PT单晶已被用来代替传统的PZT压电陶瓷。新型三元PIN-PMN-PT单晶,特别是掺杂Mn的单晶,为大功率声放映机和超声马达的创新奠定了坚实的基础,这预示着水下SONAR和微型致动装置的另一次革命。本文旨在就弛张PT单晶的发展,材料发现,晶体生长技术,域工程概念以及全矩阵特性表征一直到器件创新提供全面的综述。它概述了现代材料科学中一个真正令人鼓舞的故事。提供了所有关键参考,并且在表格中列出了30种用于不同类型的弛张PT单晶的完整材料参数集。本文的目的是为那些对这些张弛PT单晶的基础研究和实际应用感兴趣的人提供资源。此外,将基于极化旋转和带电畴壁的贡献,讨论这些畴工程弛豫-PT系统中巨大的压电特性的可能机理。

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