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Transmission electron microscopy investigation of the microstructural mechanisms for the piezoelectricity in lead-free perovskite ceramics

机译:透射电子显微镜研究无铅钙钛矿陶瓷压电性的微观结构机理

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摘要

Lead-free materials with superior piezoelectricity are in increasingly urgent demand in the current century, because the industrial standard Pb(Zr,Ti)O3-based piezoelectrics, which contain over 60 weight% of the toxic element lead, pose severe environmental hazards. Although significant research efforts have been devoted in the past decade, no effective lead-free substitute for Pb(Zr,Ti)O3 has been identified yet. One of the primary hindrances to the development of lead-free piezoelectrics lies in the ignorance of the microstructural mechanism for the electric-field-induced strains in the currently existing compositions.In this dissertation, the microstructural origin for the high piezoelectricity in (1-x)(Bi1/2Na1/2)TiO3-xBaTiO3 [(1-x)BNT-xBT], the most widely studied lead-free piezoelectric system, has been elucidated. The combination of dielectric characterization and conventional transmission electron microscopy (TEM) demonstrates that the phase relationship for unpoled ceramics is different from that for poled ceramics. This discovery leads to the update of the BNT-BT phase diagram that has been widely accepted for 20 years. The hot-stage TEM study further extends the updated phase diagram to 600 °C and clarifies the complicated relationship between the crystal/domain structures and dielectric properties. Based on these findings, the electric-field in-situ TEM investigation reveals that the morphotropic phase boundary (MPB) in this system, along with the associated piezoelectricity enhancement, could be created, destroyed, or even replaced by another MPB during electrical poling, an indispensable process for ferroelectric materials to exhibit usable piezoelectricity. The optimal piezoelectric response in the originally single-phase composition x = 7% is found to be the result of a stable MPB induced by electric fields during poling.The discovery summarized in this dissertation not only elucidates the microstructural mechanism for the high piezoelectricity in BNT-BT, but also fundamentally alters the long-standing guiding rule for designing superior piezoelectric materials. It suggests that even single-phase compositions, which were largely excluded before, may also exhibit strong piezoelectricity if stable MPBs form during poling. Such a paradigm shift adds a new dimension to the development of next generation high-performance piezoelectrics.
机译:在本世纪,具有优异压电性能的无铅材料的需求日益迫切,这是因为工业标准的Pb(Zr,Ti)O3基压电材料含有60%(重量)以上的有毒元素铅,会带来严重的环境危害。尽管在过去的十年中已经进行了大量的研究工作,但尚未发现有效的无铅替代Pb(Zr,Ti)O3的方法。无铅压电材料发展的主要障碍之一是对现有组合物中电场诱发应变的微结构机理的了解不清。已经阐明了研究最广泛的无铅压电体系x)(Bi1 / 2Na1 / 2)TiO3-xBaTiO3 [(1-x)BNT-xBT]。介电特性和常规透射电子显微镜(TEM)的结合表明,无极陶瓷的相位关系与极化陶瓷的相位关系不同。这一发现导致BNT-BT相图的更新,该相图已被广泛接受20年。 TEM的热阶段研究进一步将更新后的相图扩展至600°C,并阐明了晶体/畴结构与介电性能之间的复杂关系。基于这些发现,电场原位TEM研究表明,在电极化过程中,该系统中的相变相界(MPB)以及相关的压电性增强可以被创建,破坏甚至被另一个MPB取代,铁电材料表现出有用的压电性必不可少的过程。最初的单相成分x = 7%时的最佳压电响应是由极化过程中电场感应产生的稳定MPB所致。本文总结的发现不仅阐明了BNT中高压电性的微观结构机理。 -BT,但从根本上改变了设计优质压电材料的长期指导原则。这表明,如果在极化过程中形成稳定的MPB,即使以前被大量排除的单相成分也可能显示出强压电性。这种范式的转变为下一代高性能压电的发展增加了新的维度。

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    Ma, Cheng;

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  • 年度 2012
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  • 正文语种 en
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