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Magnetoelectric interactions in ferromagnetic-piezoelectric layered structures: Phenomena and devices

机译:铁磁-压电分层结构中的磁电相互作用:现象和装置

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摘要

Layered magnetostrictive-piezoelectric structures are multifunctional due to their dual-responsiveness to mechanical and electromagnetic forces. Here, we discuss studies of magnetoelectric (ME) interactions in ferrite-lead zirconate titanate (PZT) and terfenol-PZT material couples. Key findings include: (1) the observation of a giant low-frequency ME effect in the layered systems; (2) data analysis based on our model for low frequency ME effects; (3) observation and theory of enhanced ME coupling at the electromechanical resonance (EMR); and (4) theory and measurements of microwave ME effects, at the ferromagnetic resonance of ferrites. The layered structures are potential candidates for sensors, gyrators and microwave devices. Low frequency sensors are feasible with excellent sensitivity to minute magnetic field variations. One could also realize composite based ferromagnetic resonance devices, such as resonators, filters and phase shifters with electric field tunability for use at 1-70 GHz.
机译:分层的磁致伸缩压电结构由于对机械力和电磁力的双重响应而具有多功能性。在这里,我们讨论铁氧体-锆钛酸铅(PZT)和叔酚-PZT材料对中的磁电(ME)相互作用的研究。主要发现包括:(1)在分层系统中观察到巨大的低频ME效应; (2)基于我们模型的低频ME效果数据分析; (3)在机电共振(EMR)下增强的ME耦合的观察和理论; (4)在铁氧体的铁磁谐振下的微波ME效应的理论和测量。分层结构是传感器,回转器和微波设备的潜在候选者。低频传感器对微小的磁场变化具有出色的灵敏度是可行的。还可以实现基于复合材料的铁磁共振设备,例如具有电场可调性的谐振器,滤波器和移相器,用于1-70 GHz。

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