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Remote control of magnetostriction-based nanocontacts at room temperature

机译:在室温下基于磁致伸缩的纳米触点的远程控制

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摘要

The remote control of the electrical conductance through nanosized junctions at room temperature will play an important role in future nano-electromechanical systems and electronic devices. This can be achieved by exploiting the magnetostriction effects of ferromagnetic materials. Here we report on the electrical conductance of magnetic nanocontacts obtained from wires of the giant magnetostrictive compound Tb0.3Dy0.7Fe1.95 as an active element in a mechanically controlled break-junction device. The nanocontacts are reproducibly switched at room temperature between “open” (zero conductance) and “closed” (nonzero conductance) states by variation of a magnetic field applied perpendicularly to the long wire axis. Conductance measurements in a magnetic field oriented parallel to the long wire axis exhibit a different behaviour where the conductance switches between both states only in a limited field range close to the coercive field. Investigating the conductance in the regime of electron tunneling by mechanical or magnetostrictive control of the electrode separation enables an estimation of the magnetostriction. The present results pave the way to utilize the material in devices based on nano-electromechanical systems operating at room temperature.
机译:在室温下通过纳米级结对电导的远程控制将在未来的纳米机电系统和电子设备中发挥重要作用。这可以通过利用铁磁材料的磁致伸缩效应来实现。在这里,我们报道了从磁致伸缩化合物Tb0.3Dy0.7Fe1.95的导线中获得的磁性纳米触点的电导率,该导线是机械控制的断开结装置中的活性元素。通过垂直于长导线轴施加的磁场的变化,纳米触点在室温下可重现地在“打开”(零电导)和“闭合”(非零电导)状态之间切换。在平行于长线轴的磁场中,电导测量显示出不同的行为,其中电导仅在接近矫顽场的有限磁场范围内在两种状态之间切换。通过对电极间距进行机械或磁致伸缩控制来研究电子隧穿范围内的电导,可以估算磁致伸缩。本结果为在室温下运行的基于纳米机电系统的设备中利用该材料铺平了道路。

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