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Mapping the orbital structure of impurity bound states in a superconductor

机译:映射超导体中杂质结合态的轨道结构

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摘要

A magnetic atom inside a superconductor locally distorts superconductivity. It scatters Cooper pairs as a potential with broken time-reversal symmetry, leading to localized bound states with subgap excitation energies, named Shiba states. Most conventional approaches regarding Shiba states treat magnetic impurities as point scatterers with isotropic exchange interaction. Here, we show that the number and the shape of Shiba states are correlated to the spin-polarized atomic orbitals of the impurity, hybridized with the superconductor. Using scanning tunnelling spectroscopy, we spatially map the five Shiba excitations found on subsurface chromium atoms in Pb(111), resolving their particle and hole components. While particle components resemble d orbitals of embedded Cr atoms, hole components differ strongly from them. Density functional theory simulations correlate the orbital shapes to the magnetic ground state of the atom, and identify scattering channels and interactions, all valuable tools for designing atomic-scale superconducting devices.
机译:超导体内部的磁性原子会局部扭曲超导性。它会将库珀对散布为具有时间逆转对称性的电势,从而导致具有次能隙激发能的局部束缚态(称为Shiba态)。关于Shiba态的大多数常规方法将磁性杂质视为具有各向同性交换相互作用的点散射体。在这里,我们证明了Shiba态的数量和形状与与超导体杂交的杂质的自旋极化原子轨道有关。使用扫描隧道光谱法,我们在空间上绘制了Pb(111)表面次铬原子上发现的五个Shiba激发,从而解析了它们的粒子和空穴成分。尽管粒子成分类似于嵌入的Cr原子的d轨道,但空穴成分与此却有很大不同。密度泛函理论模拟将轨道形状与原子的磁性基态相关联,并确定散射通道和相互作用,这是设计原子级超导器件的所有有价值的工具。

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