Netherlands Foundation for Fundamental Research on Matter (FOM), 3502 GA Utrecht, The Netherlands.
Nature. 2011 Jun 29;475(7354):82-5. doi: 10.1038/nature10224.
Heat generation by electric current, which is ubiquitous in electronic devices and circuits, raises energy consumption and will become increasingly problematic in future generations of high-density electronics. The control and re-use of heat are therefore important topics for existing and emerging technologies, including spintronics. Recently it was reported that heat flow within a ferromagnet can produce a flow of spin angular momentum-a spin current-and an associated voltage. This spin Seebeck effect has been observed in metallic, insulating and semiconductor ferromagnets with temperature gradients across them. Here we describe and report the demonstration of Seebeck spin tunnelling-a distinctly different thermal spin flow, of purely interfacial nature-generated in a tunnel contact between electrodes of different temperatures when at least one of the electrodes is a ferromagnet. The Seebeck spin current is governed by the energy derivative of the tunnel spin polarization. By exploiting this in ferromagnet-oxide-silicon tunnel junctions, we observe thermal transfer of spins from the ferromagnet to the silicon without a net tunnel charge current. The induced spin accumulation scales linearly with heating power and changes sign when the temperature differential is reversed. This thermal spin current can be used by itself, or in combination with electrical spin injection, to increase device efficiency. The results highlight the engineering of heat transport in spintronic devices and facilitate the functional use of heat.
电流产生的热量在电子设备和电路中无处不在,这增加了能量消耗,在未来几代高密度电子设备中将会成为越来越严重的问题。因此,控制和再利用热量是现有和新兴技术(包括自旋电子学)的重要课题。最近有报道称,在铁磁体中,热流可以产生自旋角动量流(自旋电流)和相关电压。这种自旋塞贝克效应已经在具有温度梯度的金属、绝缘和半导体铁磁体中观察到。在这里,我们描述并报告了在不同温度的电极之间的隧道接触中,至少一个电极是铁磁体时,会产生一种明显不同的热自旋流,即纯粹界面性质的塞贝克自旋隧道效应。塞贝克自旋电流由隧道自旋极化的能量导数控制。通过在铁磁-氧化物-硅隧道结中利用这一点,我们观察到自旋从铁磁体到硅的热传递,而没有净隧道电荷电流。感应自旋积累与加热功率呈线性关系,当温度差反转时,其符号也会发生变化。这种热自旋电流可以单独使用,也可以与电自旋注入结合使用,以提高器件效率。这些结果突出了在自旋电子器件中对热输运的工程设计,促进了对热的功能利用。