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单向自旋波热输送器。

Unidirectional spin-wave heat conveyer.

机构信息

Institute for Materials Research, Tohoku University, Sendai 980-8577, Japan.

出版信息

Nat Mater. 2013 Jun;12(6):549-53. doi: 10.1038/nmat3628. Epub 2013 Apr 21.

Abstract

When energy is introduced into a region of matter, it heats up and the local temperature increases. This energy spontaneously diffuses away from the heated region. In general, heat should flow from warmer to cooler regions and it is not possible to externally change the direction of heat conduction. Here we show a magnetically controllable heat flow caused by a spin-wave current. The direction of the flow can be switched by applying a magnetic field. When microwave energy is applied to a region of ferrimagnetic Y3Fe5O12, an end of the magnet far from this region is found to be heated in a controlled manner and a negative temperature gradient towards it is formed. This is due to unidirectional energy transfer by the excitation of spin-wave modes without time-reversal symmetry and to the conversion of spin waves into heat. When a Y3Fe5O12 film with low damping coefficients is used, spin waves are observed to emit heat at the sample end up to 10 mm away from the excitation source. The magnetically controlled remote heating we observe is directly applicable to the fabrication of a heat-flow controller.

摘要

当能量被引入物质区域时,它会加热,局部温度会升高。这种能量会自发地从加热区域扩散出去。一般来说,热量应该从较热的区域流向较冷的区域,而且不可能从外部改变热传导的方向。在这里,我们展示了一种由自旋波电流引起的磁控热流。通过施加磁场,可以改变热流的方向。当微波能量被施加到亚铁磁体 Y3Fe5O12 的一个区域时,发现远离该区域的磁铁的一端被以可控的方式加热,并形成了朝向它的负温度梯度。这是由于激发没有时间反转对称性的自旋波模式的单向能量转移,以及自旋波转换为热量。当使用具有低阻尼系数的 Y3Fe5O12 薄膜时,观察到自旋波在离激励源最远 10 毫米的样品端发射热量。我们观察到的磁控远程加热可直接应用于热流控制器的制造。

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