论文标题
Quantum Dot Josephson连接的杂质骑士转移
Impurity Knight shift in quantum dot Josephson junctions
论文作者
论文摘要
带有嵌入式量子点的约瑟夫森交界器的光谱揭示了与$ \ cos ϕ $成正比的外部磁场中的水平分裂的贡献,其中$ ϕ $是整个交界处的规范不变相位差。为了阐明这种意外效应的起源,我们系统地研究了超导Anderson杂质模型中刺板子段状态的Zeeman分裂。通过在骑士移位现象的变体中,局部力矩和bogoliubov准粒的连续体之间的交换相互作用重新归一化。轮班中的领先术语是杂交强度$γ$(电子跳跃二次)的线性,而二次式术语在$γ$中是二次的(电子跳跃中的四分之一),并且取决于$ ϕ $,由于对设备的Josephson Energy的旋转极化依赖性校正了设备的Josephson Energy。 $ ϕ $依赖性部分的幅度对于超出扰动制度以外的实验相关参数最大,在该参数中,使用数值重新归一化组计算进行了研究。量子点旋转和约瑟夫森电流之间的这种磁场可调耦合可以在超导旋转型中找到广泛的用途。
Spectroscopy of a Josephson junction device with an embedded quantum dot reveals the presence of a contribution to level splitting in external magnetic field that is proportional to $\cos ϕ$, where $ϕ$ is the gauge-invariant phase difference across the junction. To elucidate the origin of this unanticipated effect, we systematically study the Zeeman splitting of spinful subgap states in the superconducting Anderson impurity model. The magnitude of the splitting is renormalized by the exchange interaction between the local moment and the continuum of Bogoliubov quasiparticles in a variant of the Knight shift phenomenon. The leading term in the shift is linear in the hybridisation strength $Γ$ (quadratic in electron hopping), while the subleading term is quadratic in $Γ$ (quartic in electron hopping) and depends on $ϕ$ due to spin-polarization-dependent corrections to the Josephson energy of the device. The amplitude of the $ϕ$-dependent part is largest for experimentally relevant parameters beyond the perturbative regime where it is investigated using numerical renormalization group calculations. Such magnetic-field-tunable coupling between the quantum dot spin and the Josephson current could find wide use in superconducting spintronics.