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Magnetoviscoelastic Ferrofluid-Based Magnetometer

机译:磁粘弹性铁磁磁强计

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摘要

In this paper, we present a novel concept for magnetic sensing that is based upon the sensitive monitoring of the magnetoviscoelastic effects in magnetic nanoparticle containing ferrofluids using micromachined shear mode bulk acoustic wave quartz crystal resonators (QCR). The unique sensor concept is based on the application of, hitherto unexplored, magnetic field induced viscoelastic response of a thin interfacial ferrofluid layer placed atop a high-frequency shear wave quartz resonator, which can be sensitively monitored through the at-resonance impedance characteristics of the resonator. The high magnetic susceptibility of ferrofluid suspensions results in the modulation of the viscoelasticity due to applied magnetic fields. A bias magnetic field perpendicular to the resonator surface was applied to realize a dense agglomeration of the ferrofluid particles at the immediate interface of the resonator surface. Viscoelastic changes due to in-plane incident magnetic field shifts the at-resonance conductance characteristics of QCR, and is tracked in real time to achieve a novel magnetic sensing mechanism to detect and quantify the low-frequency low strength magnetic fields. For improved sensitivity, the in-plane sensed magnetic flux density is concentrated using a high relative permeability () thin film of Metglas (FeBSi) deposited on the resonator electrode. Furthermore, by patterning the Metglas film in a bow-tie shape and aligned at the center of the QCR electrode, both 2-D vector sensing and improvement in the sensitivity were achieved. Using these improvements, a minimum detectable field of 1.5 nT/
机译:在本文中,我们提出了一种新颖的磁传感概念,该传感基于使用微机械剪切模式体声波石英晶体谐振器(QCR)对含铁磁流体的磁性纳米颗粒中磁粘弹性效应的敏感监测。独特的传感器概念是基于迄今为止未探索的磁场感应的粘弹性响应,该响应是放置在高频剪切波石英谐振器顶部的薄界面铁磁流体层的,该谐振器可以通过谐振器的谐振阻抗特性来灵敏地进行监视。谐振器。铁磁流体悬浮液的高磁化率由于施加的磁场而导致粘弹性的调节。施加垂直于谐振器表面的偏置磁场,以实现铁磁流体颗粒在谐振器表面的直接界面处的密集聚集。平面内入射磁场引起的粘弹性变化会改变QCR的共振电导特性,并进行实时跟踪,以实现一种新颖的磁感应机制,可以检测和量化低频低强度磁场。为了提高灵敏度,使用沉积在谐振器电极上的Metglas(FeBSi)高相对磁导率(FeBSi)薄膜集中了平面内感测的磁通密度。此外,通过将Metglas膜图案化为蝴蝶结形状并对准QCR电极的中心,可以实现二维矢量感测和灵敏度的提高。使用这些改进,最小可检测场为1.5 nT /

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