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首页> 外文期刊>AIP Advances >Dramatic influence of Dy3+ doping on strain and domain structure in lead-free piezoelectric 0.935(Na1/2Bi1/2)TiO3?0.065BaTiO3 ceramics
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Dramatic influence of Dy3+ doping on strain and domain structure in lead-free piezoelectric 0.935(Na1/2Bi1/2)TiO3?0.065BaTiO3 ceramics

机译:Dy3 +掺杂对0.935(Na1 / 2Bi1 / 2)TiO3?0.065BaTiO3无铅压电陶瓷应变和畴结构的剧烈影响

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摘要

An electric-field induced giant strain response and doping level dependent domain structural variations have been studied in the dysprosium (Dy3+)-modified 0.935(Na1/2Bi1/2)TiO3-0.065BaTiO3(xDy : NBBT) ceramics with the doping levels of 0%, 0.5%, 1%, and 2%. X-ray diffraction and Raman spectroscopy analyses not only demonstrates the change in ionic configurations induced by Dy3+doping, but also shows the local crystal symmetry for x ≥ 0.5% doping levels to deviate from the idealized cubic structure. Piezoresponse force microscopy measurement exhibits the presence of an intermediate phase with orthorhombic symmetry at the critical Dy3+doping level of 2%. Moreover, at this doping level, a giant recoverable nonlinear strain of ~0.44% can be observed with high normalized strain (Smax/Emax) of 728 pm/V. At the same applied field, the strain exhibits a 175% increase than that of NBBT ceramic. Such a large strain stems from the varying coherence lengths of polar nanoregions (PNRs) and an unusual reversible 90° domain switching caused by the symmetry conforming property of point defects, where the restoring force is provided by unswitchable defects. The mechanism reveals a new possibility to achieve large electric-field strain effect for a wide range of ferroelectric systems, which can lead to applications in novel “on-off” actuators.
机译:在in掺杂量为0的+(Dy3 +)改性的0.935(Na1 / 2Bi1 / 2)TiO3-0.065BaTiO3(xDy:NBBT)陶瓷中研究了电场诱导的大应变响应和掺杂水平依赖性的畴结构变化。 %,0.5%,1%和2%。 X射线衍射和拉曼光谱分析不仅证明了Dy3 +掺杂引起的离子构型变化,而且还表明了x≥0.5%掺杂水平偏离理想立方结构时的局部晶体对称性。压电响应力显微镜测量显示在临界Dy2 +掺杂水平为2%时,存在具有正交对称性的中间相。此外,在此掺杂水平下,可以观察到约0.44%的巨大可恢复非线性应变,并且具有728 pm / V的高归一化应变(Smax / Emax)。在相同的应用领域,应变比NBBT陶瓷增加了175%。如此大的应变源于极性纳米区域(PNR)的相干长度的变化,以及由点缺陷的对称贴合特性引起的异常可逆的90°域转换,其中恢复力由不可转换的缺陷提供。该机制揭示了在广泛的铁电系统中实现大电场应变效应的新可能性,这可能导致在新型“开-关”执行器中的应用。

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