Nanogranular Strontium Ferromolybdate/Strontium Molybdate Ceramics—A Magnetic Material Possessing a Natural Core-Shell Structure

G. Suchaneck, E. Artiukh, N. Kalanda, M. Yarmolich, Gerald Gerlach
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Abstract

In this work, we demonstrate the preparation of easy-to-fabricate nanogranular strontium ferromolybdate/strontium molybdate core-shell ceramics and examine their properties, including tunnel magnetoresistance, magnetic field sensitivity, and temperature coefficient of the tunnel magnetoresistance. The tunnel magnetoresistance of nanogranular strontium ferromolybdate/strontium molybdate core-shell ceramics was modeled, yielding values suitable for magnetoresistive sensor applications. Such structures possess a narrow peak of magnetic flux sensibility located at about 80 mT. For magnetic flux measurement, single-domain granules with superparamagnetic behavior should be applied. The predicted TMR magnetic flux sensitivities for granules with superparamagnetic behavior amount to about 7.7% T−1 and 1.5% T−1 for granule sizes of 3 nm and 5 nm, respectively. A drawback of the tunnel magnetoresistance of such nanogranular core-shell ceramics is the unacceptably large value of the temperature coefficient. Acceptable values, lower than 2% K−1, are obtained only at low temperatures (less than 100 K) or large magnetic flux densities (exceeding 6 T). Therefore, a Wheatstone bridge configuration should be adopted for magnetoresistive sensor design to compensate for the effect of temperature.
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纳米粒状锶铁钼酸盐/锶钼酸盐陶瓷--一种具有天然核壳结构的磁性材料
在这项研究中,我们展示了易于制备的纳米粒状钼铁锶/钼酸锶核壳陶瓷,并研究了它们的特性,包括隧道磁阻、磁场灵敏度和隧道磁阻的温度系数。对纳米粒状钼酸铁锶/钼酸锶核壳陶瓷的隧道磁阻进行了建模,得出了适合磁阻传感器应用的数值。这种结构的磁通敏感性峰值较窄,约为 80 mT。要测量磁通量,应采用具有超顺磁性的单域颗粒。具有超顺磁性的颗粒的预测 TMR 磁通量灵敏度分别为 7.7% T-1 和 1.5% T-1(颗粒尺寸分别为 3 nm 和 5 nm)。这种纳米颗粒核壳陶瓷的隧道磁阻的一个缺点是温度系数太大。只有在低温(低于 100 K)或大磁通密度(超过 6 T)条件下,才能获得低于 2% K-1 的可接受值。因此,磁阻传感器设计应采用惠斯通电桥配置,以补偿温度的影响。
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