论文标题
非平衡的自旋传输通过围绕杂质的杂质
Nonequilibrium spintronic transport through Kondo impurities
论文作者
论文摘要
在这项工作中,我们通过使用杂交数值群体时间依赖性依赖性依赖性矩阵矩阵的热率组热量淬灭方法分析了通过量子杂质(量子点或分子)进行非平衡传输。我们研究了通过系统的偏见,这显示了差异的偏见。让人联想到状态的平衡局部密度。在非平衡设置中,还发现差分电导中的共振随着铅自旋极化的增加而降低。后者诱导了一个有效的交换场,可提高点水平的自旋退化。因此,正如我们所证明的那样,可以通过用有限的外部磁场施加在系统上的有限外部磁场来恢复近托共振。最后,我们研究了温度对非平衡电导的影响,重点是分裂的围绕共振。因此,我们的工作提供了与嵌入在磁性隧道连接中的量子点和分子相关的自旋分辨传输特性的准确定量描述。
In this work we analyze the nonequilibrium transport through a quantum impurity (quantum dot or molecule) attached to ferromagnetic leads by using a hybrid numerical renormalization group-time-dependent density matrix renormalization group thermofield quench approach.For this, we study the bias dependence of the differential conductance through the system, which shows a finite zero-bias peak, characteristic of the Kondo resonance and reminiscent of the equilibrium local density of states. In the non-equilibrium settings, the resonance in the differential conductance is also found to decrease with increasing the lead spin polarization. The latter induces an effective exchange field that lifts the spin degeneracy of the dot level. Therefore as we demonstrate, the Kondo resonance can be restored by counteracting the exchange field with a finite external magnetic field applied to the system. Finally, we investigate the influence of temperature on the nonequilibrium conductance, focusing on the split Kondo resonance. Our work thus provides an accurate quantitative description of the spin-resolved transport properties relevant for quantum dots and molecules embedded in magnetic tunnel junctions.