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Correlation-driven transport asymmetries through coupled spins in a tunnel junction

机译:通过隧道结中的耦合自旋的相关驱动输运不对称

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摘要

Spin–spin correlations can be the driving force that favours certain ground states and are key in numerous models that describe the behaviour of strongly correlated materials. While the sum of collective correlations usually lead to a macroscopically measurable change in properties, a direct quantification of correlations in atomic scale systems is difficult. Here we determine the correlations between a strongly hybridized spin impurity on the tip of a scanning tunnelling microscope and its electron bath by varying the coupling to a second spin impurity weakly hybridized to the sample surface. Electronic transport through these coupled spins reveals an asymmetry in the differential conductance reminiscent of spin-polarized transport in a magnetic field. We show that at zero field, this asymmetry can be controlled by the coupling strength and is related to either ferromagnetic or antiferromagnetic spin–spin correlations in the tip.
机译:自旋-自旋相关性可能是有利于某些基态的驱动力,并且在描述强相关材料行为的众多模型中很关键。尽管集体相关性之和通常会导致宏观上可测量的特性变化,但很难直接量化原子级系统中的相关性。在这里,我们通过改变与弱杂交到样品表面的第二种自旋杂质的耦合,来确定扫描隧道显微镜尖端上的高度杂化的自旋杂质与其电子浴之间的相关性。通过这些耦合自旋的电子传输揭示了差分电导的不对称性,使人想起了磁场中的自旋极化传输。我们表明,在零磁场下,这种不对称性可以通过耦合强度来控制,并且与尖端中的铁磁或反铁磁自旋-自旋相关。

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