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Making flexible spin caloritronic devices with interconnected nanowire networks

机译:通过互连的纳米线网络制造灵活的自旋量热电子器件

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摘要

Spin caloritronics has recently emerged from the combination of spintronics and thermoelectricity. Here, we show that flexible, macroscopic spin caloritronic devices based on large-area interconnected magnetic nanowire networks can be used to enable controlled Peltier cooling of macroscopic electronic components with an external magnetic field. We experimentally demonstrate that three-dimensional CoNi/Cu multilayered nanowire networks exhibit an extremely high, magnetically modulated thermoelectric power factor up to 7.5 mW/K2m and large spin-dependent Seebeck and Peltier coefficients of −11.5 μV/K and −3.45 mV at room temperature, respectively. Our investigation reveals the possibility of performing efficient magnetic control of heat flux for thermal management of electronic devices and constitutes a simple and cost-effective pathway for fabrication of large-scale flexible and shapeable thermoelectric coolers exploiting the spin degree of freedom.
机译:自旋电子学和热电的结合最近产生了自旋热电子学。在这里,我们展示了基于大面积互连磁性纳米线网络的灵活,宏观自旋量热器件,可用于通过外部磁场对宏观电子元件进行受控珀尔帖冷却。我们通过实验证明,三维CoNi / Cu多层纳米线网络表现出高达7.5 mW / K 2 m的极高的磁调制热电功率因数,并且自旋相关的塞贝克系数和珀耳帖系数为-11.5室温下分别为μV/ K和-3.45 mV。我们的研究揭示了对电子设备的热管理进行热通量的有效磁控制的可能性,并构成了利用自旋自由度制造大型柔性且可成形的热电冷却器的简单且经济高效的途径。

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