论文标题
单分子晶体管中带有磁导向的电动穿梭中的自旋光拉效应
Spin-Polaronic Effects in Electric Shuttling in a Single Molecule Transistor with Magnetic Leads
论文作者
论文摘要
自旋机电器械的电流特性,其中计算了通过单个水平可移动量子点进行反行磁化的磁导向之间的自旋偏振电子隧道。发现了新的交换和机电耦合诱导的(自旋光子)效应,这些效应确定了强烈的非线性电流 - 电压特性。在电子传输的低压状态下,量子点向源电极向源电极的电压依赖性和交换场诱导的位移导致差分电导的非单调行为,这表明电场通过电场提升了旋转极波子效应。在高电压下,电子穿梭的发作导致电流和负差分电导率下降,这是由于机械诱导的隧道电阻率的增加以及交换场诱导的磁场中自旋流通抑制的抑制。讨论了这些预测的自旋影响对DOT的振荡频率的依赖性和电子电子相关性的强度。
Current-voltage characteristics of a spintromechanical device, in which spin-polarized electrons tunnel between magnetic leads with anti-parallel magnetization through a single level movable quantum dot, are calculated. New exchange- and electromechanical coupling-induced (spin-polaronic) effects that determine strongly nonlinear current-voltage characteristics were found. In the low-voltage regime of electron transport the voltage-dependent and exchange field-induced displacement of quantum dot towards the source electrode leads to nonmonotonic behavior of differential conductance that demonstrates the lifting of spin-polaronic effects by electric field. At high voltages the onset of electron shuttling results in the drop of current and negative differential conductance, caused by mechanically-induced increase of tunnel resistivities and exchange field-induced suppression of spin-flips in magnetic field. The dependence of these predicted spin effects on the oscillations frequency of the dot and the strength of electron-electron correlations is discussed.