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From non-linear magnetoacoustics spin reorientation transition to magnetoelectric micro/nano-systems

机译:从非线性磁声和旋转重新定向过渡到磁电微/纳米系统

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The interaction of a strongly nonlinear spin system with a crystalline lattice through magnetoelastic coupling results in significant modifications of the acoustic properties of magnetic materials, especially in the vicinity of magnetic instabilities associated with the spin-reorientation transition (SRT). The magnetoelastic coupling transfers the critical properties of the magnetic subsystem to the elastic one, which leads to a strong decrease of the sound velocity in the vicinity of the SRT, and allows a large control over acoustic nonlinearities. The general principles of the non-linear magneto-acoustics (NMA) will be introduced and illustrated in 'bulk' applications such as acoustic wave phase conjugation, multi-phonon coupling, explosive instability of magneto-elastic vibrations, etc. The concept of the SRT coupled to magnetoelastic interaction has been transferred into nanostructured magnetoelastic multilayers with uni-axial anisotropy. The high sensitivity and the non-linear properties have been demonstrated in cantilever type actuators, and phenomena such as magneto-mechanical RF demodulation have been observed. The combination of the magnetic layers with piezoelectric materials also led to stress-mediated magnetoelectric (ME) composites with high ME coefficients, thanks to the SRT. The magnetoacoustic effects of the SRT have also been studied for surface acoustic waves propagating in the magnetoelastic layers and found to be promising for highly sensitive magnetic field sensors working at room temperature. On the other hand, mechanical stress is a very efficient way to control the magnetic subsystem. The principle of a very energy efficient stress-mediated magnetoelectric writing and reading in a magnetic memory is described.
机译:通过磁耦合结晶晶格与晶格晶格的相互作用导致磁性材料的声学性质的显着修改,尤其是与旋转重新定向转变(SRT)相关的磁不稳定性附近。磁力弹性耦合将磁性子系统的临界特性转移到弹性,这导致SRT附近的声速的强度降低,并且允许大量控制声学非线性。将引入非线性磁声 - 声学(NMA)的一般原理,并在“批量”应用中引入和示出,例如声波相位缀合,多声子耦合,磁力振动的爆炸不稳定性等。通过单轴各向异性转移到磁性相互作用的SRT与磁性相互作用转移到纳米结构磁力弹性多层中。已经在悬臂式致动器中证明了高灵敏度和非线性特性,并且已经观察到诸如磁机RF解调的现象。由于SRT,带有压电材料的磁性层的组合也导致具有高ME系数的应力介导的磁电(ME)复合材料。还研究了SRT的磁声效应对于在磁力弹性层中传播的表面声波,并且发现在室温下工作的高敏感磁场传感器是有希望的。另一方面,机械应力是控制磁性子系统的非常有效的方法。描述了非常能有效的应力介导的磁存储器中的磁存储器读数的原理。

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