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Electron transport in nanoscale junctions with local anharmonic modes

机译:具有局部非谐模式的纳米级结中的电子传输

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We study electron transport in nanojunctions in which an electron on a quantum dot or a molecule is interacting with an N-state local impurity, a harmonic (“Holstein”) mode, or a two-state system (“spin”). These two models, the Anderson-Holstein model and the spin-fermion model, can be conveniently transformed by a shift transformation into a form suitable for a perturbative expansion in the tunneling matrix element.We explore the current-voltage characteristics of the two models in the limit of high temperature and weak electron-metal coupling using a kinetic rate equation formalism, considering both the case of an equilibrated impurity, and the unequilibrated case. Specifically, we show that the analog of the Franck-Condon blockade physics is missing in the spin-fermion model. We complement this study by considering the low-temperature quantum adiabatic limit of the dissipative spin-fermion model, with fast tunneling electrons and a slow impurity. While a mean-field analysis of the Anderson-Holstein model suggests that nonlinear functionalities, bistability and hysteresis may develop, such effects are missing in the spin-fermion model at the mean-field level.
机译:我们研究了纳米结中的电子传输,其中量子点或分子上的电子与N状态局部杂质,谐波(“ Holstein”)模式或两态系统(“自旋”)相互作用。通过移位变换可以方便地将这两个模型Anderson-Holstein模型和自旋费米子模型转换为适合隧穿矩阵元素中微扰展开的形式。我们探索了这两个模型的电流-电压特性使用动力学速率方程形式化来确定高温和弱电子-金属耦合的极限,同时考虑了杂质的平衡情况和非平衡的情况。具体来说,我们证明了自旋费米子模型中缺少弗兰克-康登封锁物理学的类似物。我们通过考虑耗散自旋费米子模型的低温量子绝热极限,快速隧穿电子和慢速杂质来补充这项研究。尽管对安德森-霍尔斯坦模型的平均场分析表明可能会出现非线性功能,双稳态和磁滞现象,但自旋费米子模型在平均场水平上却缺少这种影响。

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