Matyushov Alexei D, Spetzler Benjamin, Zaeimbashi Mohsen, Zhou James, Qian Zhenyun, Golubeva Elizaveta V, Tu Cheng, Guo Yingxue, Chen Brian F, Wang Damo, Will-Cole Alexandria, Chen Huaihao, Rinaldi Matteo, McCord Jeffrey, Faupel Franz, Sun Nian X
Department of Electrical and Computer Engineering, Northeastern University, Boston, Massachusetts 02115, United States.
Institute of Material Science, Kiel University, 24118 Kiel, Germany.
Adv Mater Technol. 2021 Sep;6(9). doi: 10.1002/admt.202100294. Epub 2021 Jun 27.
Miniaturized piezoelectric/magnetostrictive contour-mode resonators have been shown to be effective magnetometers by exploiting the ΔE effect. With dimensions of ~100-200 μm across and <1 μm thick, they offer high spatial resolution, portability, low power consumption, and low cost. However, a thorough understanding of the magnetic material behavior in these devices has been lacking, hindering performance optimization. This manuscript reports on the strong, nonlinear correlation observed between the frequency response of these sensors and the stress-induced curvature of the resonator plate. The resonance frequency shift caused by DC magnetic fields drops off rapidly with increasing curvature: about two orders of magnitude separate the highest and lowest frequency shift in otherwise identical devices. Similarly, an inverse correlation with the quality factor was found, suggesting a magnetic loss mechanism. The mechanical and magnetic properties are theoretically analyzed using magnetoelastic finite-element and magnetic domain-phase models. The resulting model fits the measurements well and is generally consistent with additional results from magneto-optical domain imaging. Thus, the origin of the observed behavior is identified and broader implications for the design of nano-magnetoelastic devices are derived. By fabricating a magnetoelectric nano-plate resonator with low curvature, a record-high DC magnetic field sensitivity of 5 Hz/nT is achieved.
通过利用ΔE效应,小型化的压电/磁致伸缩轮廓模式谐振器已被证明是有效的磁力计。其尺寸约为100 - 200μm宽、<1μm厚,具有高空间分辨率、便携性、低功耗和低成本。然而,目前缺乏对这些器件中磁性材料行为的深入了解,这阻碍了性能优化。本论文报道了在这些传感器的频率响应与谐振器板的应力诱导曲率之间观察到的强烈非线性相关性。直流磁场引起的共振频率偏移随着曲率增加而迅速下降:在其他条件相同的器件中,最高和最低频率偏移相差约两个数量级。同样,还发现了与品质因数的反相关关系,这表明存在一种磁损耗机制。使用磁弹性有限元和磁畴相模型对力学和磁性特性进行了理论分析。所得模型与测量结果拟合良好,并且总体上与磁光畴成像的其他结果一致。因此,确定了观察到的行为的起源,并得出了对纳米磁弹性器件设计更广泛的启示。通过制造具有低曲率的磁电纳米板谐振器,实现了5 Hz/nT的创纪录高直流磁场灵敏度。