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Tuning Ising superconductivity with layer and spin–orbit coupling in two-dimensional transition-metal dichalcogenides

机译:在二维过渡金属二卤化物中用层和自旋轨道耦合调谐伊辛超导

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摘要

Systems simultaneously exhibiting superconductivity and spin–orbit coupling are predicted to provide a route toward topological superconductivity and unconventional electron pairing, driving significant contemporary interest in these materials. Monolayer transition-metal dichalcogenide (TMD) superconductors in particular lack inversion symmetry, yielding an antisymmetric form of spin–orbit coupling that admits both spin-singlet and spin-triplet components of the superconducting wavefunction. Here, we present an experimental and theoretical study of two intrinsic TMD superconductors with large spin–orbit coupling in the atomic layer limit, metallic 2H-TaS2 and 2H-NbSe2. We investigate the superconducting properties as the material is reduced to monolayer thickness and show that high-field measurements point to the largest upper critical field thus reported for an intrinsic TMD superconductor. In few-layer samples, we find the enhancement of the upper critical field is sustained by the dominance of spin–orbit coupling over weak interlayer coupling, providing additional candidate systems for supporting unconventional superconducting states in two dimensions.
机译:预计同时表现出超导性和自旋-轨道耦合的系统将为拓扑超导性和非常规电子配对提供一条途径,从而引起当代人们对这些材料的极大兴趣。单层过渡金属二硫化氢(TMD)超导体尤其缺乏反演对称性,从而产生了自旋-轨道耦合的反对称形式,允许超导波函数的自旋-单重和自旋-三重分量。在这里,我们对两种固有的TMD超导体进行实验和理论研究,它们在原子层极限内具有大的自旋轨道耦合,金属2H-TaS2和2H-NbSe2。当材料减小到单层厚度时,我们研究了超导性能,并表明高场测量指向了固有TMD超导体的最大上临界场。在几层样本中,我们发现自旋-轨道耦合对弱层间耦合的支配地位维持了上临界场的增强,从而提供了额外的候选系统来支持二维的非常规超导状态。

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