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Low-frequency and resonance magnetoelectric effects in piezoelectric and functionally stepped ferromagnetic layered composites

机译:压电和功能步进铁磁层状复合材料的低频和共振磁电效应

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The strain mediated magnetoelectric (ME) coupling is studied in bilayers of lead zirconate titanate (PZT) and a ferromagnetic layer that is functionally stepped. Nickel with negative piezomagnetic coefficient q and Metglas with positive q are bonded to achieve the desired step in q for the ferromagnetic phase. Samples of PZT-Ni-Metglas and PZT-Metglas-Ni are used for measurements of ME voltage coefficient (MEVC) at low frequencies and at frequencies corresponding to bending resonance. It is shown that at low frequencies the bending moment due to stepped-q counteracts the asymmetry-related flexural strain in the sample and enhances the strength of ME coupling. The MEVC is found to be as high as in symmetric trilayers in which flexural deformation is absent, and it ranges from 0.4 to 3.4 V/cm Oe depending on the grading scheme and the thickness of Metglas. A resonance enhancement of the MEVC to 40-220 V/cm Oe is measured at bending modes for samples clamped at one end. Samples of PZT-Ni-Metglas show a higher MEVC than for PZT-Metglas-Ni both at low frequencies and at bending resonance. The q -stepped composites are of importance for ultra-sensitive magnetic field sensors.
机译:在锆钛酸铅(PZT)和功能性步进的铁磁层的双层结构中研究了应变介导的磁电(ME)耦合。结合具有负压电系数q的镍和具有正q的Metglas,以在q中实现铁磁相的所需步骤。 PZT-Ni-Metglas和PZT-Metglas-Ni的样品用于在低频和对应于弯曲共振的频率下测量ME电压系数(MEVC)。结果表明,在低频下,由阶跃q引起的弯矩抵消了样品中与不对称相关的弯曲应变,并增强了ME耦合的强度。发现MEVC与不存在挠曲变形的对称三层膜一样高,取决于分级方案和Metglas的厚度,其在0.4至3.4 V / cm Oe的范围内。对于在一端夹持的样品,在弯曲模式下测得MEVC共振增强到40-220 V / cm Oe。在低频和弯曲共振时,PZT-Ni-Metglas样品均显示出比PZT-Metglas-Ni高的MEVC。 q阶复合材料对于超灵敏磁场传感器非常重要。

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