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Boosting spin-caloritronic effects by attractive correlations in molecular junctions

机译:通过分子连接中的有吸引力的相关性增强自旋量热效应

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摘要

In nanoscopic systems quantum confinement and interference can lead to an enhancement of thermoelectric properties as compared to conventional bulk materials. For nanostructures, such as molecules or quantum dots coupled to external leads, the thermoelectric figure of merit can reach or even exceed unity. Moreover, in the presence of external magnetic field or when the leads are ferromagnetic, an applied temperature gradient can generate a spin voltage and an associated spin current flow in the system, which makes such nanostructures particularly interesting for future thermoelectric applications. In this study, by using the numerical renormalization group method, we examine the spin-dependent thermoelectric transport properties of a molecular junction involving an orbital level with attractive Coulomb correlations coupled to ferromagnetic leads. We analyze how attractive correlations affect the spin-resolved transport properties of the system and find a nontrivial dependence of the conductance and tunnel magnetoresistance on the strength and sign of those correlations. We also demonstrate that attractive correlations can lead to an enhancement of the spin thermopower and the figure of merit, which can be controlled by a gate voltage.
机译:在纳米系统中,与传统的块状材料相比,量子限制和干扰可以导致热电特性的增强。对于与外部引线耦合的分子或量子点等纳米结构,热电性能因数可达到甚至超过1。此外,在存在外部磁场或引线为铁磁的情况下,所施加的温度梯度会在系统中产生自旋电压和相关的自旋电流,这使得此类纳米结构对于未来的热电应用特别有趣。在这项研究中,通过使用数值重归一化组方法,我们研究了分子轨道的自旋相关热电输运性质,该分子结涉及具有吸引磁的库仑相关性与铁磁引线耦合的轨道能级。我们分析了有吸引力的相关性如何影响系统的自旋分辨输运性质,并发现电导和隧道磁阻对这些相关性的强度和符号的非平凡依赖。我们还证明了有吸引力的相关性可以导致自旋热功率和品质因数的提高,这可以通过栅极电压来控制。

著录项

  • 期刊名称 Scientific Reports
  • 作者

    Ireneusz Weymann;

  • 作者单位
  • 年(卷),期 -1(6),-1
  • 年度 -1
  • 页码 19236
  • 总页数 10
  • 原文格式 PDF
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