Center for Quantum Devices & Nano-Science Center, Niels Bohr Institute, University of Copenhagen, Universitetsparken 5, 2100, Copenhagen Ø, Denmark.
Faculty of Mathematics and Physics, University of Ljubljana, Jadranska 19, SI-1000, Ljubljana, Slovenia.
Nat Commun. 2018 Jun 18;9(1):2376. doi: 10.1038/s41467-018-04683-x.
A magnetic impurity coupled to a superconductor gives rise to a Yu-Shiba-Rusinov (YSR) state inside the superconducting energy gap. With increasing exchange coupling the excitation energy of this state eventually crosses zero and the system switches to a YSR ground state with bound quasiparticles screening the impurity spin by ħ/2. Here we explore indium arsenide (InAs) nanowire double quantum dots tunnel coupled to a superconductor and demonstrate YSR screening of spin-1/2 and spin-1 states. Gating the double dot through nine different charge states, we show that the honeycomb pattern of zero-bias conductance peaks, archetypal of double dots coupled to normal leads, is replaced by lines of zero-energy YSR states. These enclose regions of YSR-screened dot spins displaying distinctive spectral features, and their characteristic shape and topology change markedly with tunnel coupling strengths. We find excellent agreement with a simple zero-bandwidth approximation, and with numerical renormalization group calculations for the two-orbital Anderson model.
一个与超导体耦合的磁性杂质会在超导能隙内产生一个 Yu-Shiba-Rusinov(YSR)态。随着交换耦合的增加,这个态的激发能量最终穿过零,系统切换到一个 YSR 基态,其中束缚准粒子通过 ħ/2 屏蔽杂质自旋。在这里,我们探索了砷化铟(InAs)纳米线双量子点与超导体隧道耦合,并证明了自旋-1/2 和自旋-1 状态的 YSR 屏蔽。通过九个不同的电荷态对双点进行门控,我们表明,零偏置电导峰的蜂窝状图案,典型的与正常引线耦合的双点,被零能 YSR 态的线所取代。这些线包围着显示出独特光谱特征的 YSR 屏蔽点自旋区域,它们的特征形状和拓扑结构随着隧道耦合强度的变化而显著变化。我们发现与简单的零带宽近似以及双轨道安德森模型的数值重整化群计算非常吻合。