论文标题

反铁磁铁/超导体接口处的néel接近效应

Néel proximity effect at antiferromagnet/superconductor interfaces

论文作者

Bobkov, G. A., Bobkova, I. V., Bobkov, A. M., Kamra, Akashdeep

论文摘要

在常规超导体中引起的自旋分解通过破坏旋转刺激并创建自旋三曲线库珀对,从而削弱了超导性。从理论上讲,我们证明了这种效应也是由相邻补偿的抗fiferromagnet引起的,该反铁磁铁不会产生净旋转分解。我们发现抗铁磁铁产生了NéelTirepCooper Pairs,其配对振幅在类似于Antiferromagnet的旋转的空间中迅速振荡。这些非常规库珀的出现降低了单线对的振幅,从而降低了超导临界温度。我们开发了采用两种公共框架的系统的准绿色功能描述。它成功地捕获了库珀对振幅的快速振荡,并在晶格间距量表上以及它们在较大的相干长度尺度上的平滑变化。我们采用了这样开发的理论框架,我们研究了超导体/抗fiferromagnet双层中这种Néel接近性效应,这是界面交换,疾病和化学潜力的函数,发现了丰富的物理学。我们的发现还提供了对实验的见解,这些实验发现相邻的抗铁磁铁对超导性的抑制大于预期。

Spin-splitting induced in a conventional superconductor weakens superconductivity by destroying spin-singlet and creating spin-triplet Cooper pairs. We demonstrate theoretically that such an effect is also caused by an adjacent compensated antiferromagnet, which yields no net spin-splitting. We find that the antiferromagnet produces Néel triplet Cooper pairs, whose pairing amplitude oscillates rapidly in space similar to the antiferromagnet's spin. The emergence of these unconventional Cooper pairs reduces the singlet pairs' amplitude, thereby lowering the superconducting critical temperature. We develop a quasiclassical Green's functions description of the system employing a two-sublattice framework. It successfully captures the rapid oscillations in the Cooper pairs' amplitude at the lattice spacing scale as well as their smooth variation on the larger coherence length scale. Employing the theoretical framework thus developed, we investigate this Néel proximity effect in a superconductor/antiferromagnet bilayer as a function of interfacial exchange, disorder, and chemical potential, finding rich physics. Our findings also offer insights into experiments which have found a larger than expected suppression of superconductivity by an adjacent antiferromagnet.

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