论文标题
在二维电子气体中实现的库珀对分裂器中的三胞胎相关性
Triplet correlations in Cooper pair splitters realized in a two-dimensional electron gas
论文作者
论文摘要
库珀对占据了超导体的基态,通常由具有相反自旋的最大纠缠电子组成。为了研究这些电子的自旋和纠缠特性,必须通过称为库珀对分裂(CPS)的过程在空间上分离它们。在这里,我们提供了半导体二维电子气体(2DEG)中CP的首次演示。通过将两个量子点耦合到超导体 - 触发器杂种区域,我们实现了有效的库珀对分裂,并清楚地将其与其他局部和非本地过程区分开。当提起点的自旋变性时,它们可以作为自旋过滤器操作,以获取有关形成库珀对的电子的自旋的信息。我们不仅会观察到库珀对几乎完美地分成相对的旋转电子(即传统的单线配对),还可以分为相等的旋转电子,从而达到了量子点之间的三重态相关性。重要的是,在我们的2维数中,异常的自旋轨道相互作用产生了强大的三重态分量,幅度与单线配对相当。在可扩展且灵活的平台中CP的演示提供了一种可靠的途径,以人工Kitaev链的形式研究芯片纠缠和拓扑超导性。
Cooper pairs occupy the ground state of superconductors and are typically composed of maximally entangled electrons with opposite spin. In order to study the spin and entanglement properties of these electrons, one must separate them spatially via a process known as Cooper pair splitting (CPS). Here we provide the first demonstration of CPS in a semiconductor two-dimensional electron gas (2DEG). By coupling two quantum dots to a superconductor-semiconductor hybrid region we achieve efficient Cooper pair splitting, and clearly distinguish it from other local and non-local processes. When the spin degeneracy of the dots is lifted, they can be operated as spin-filters to obtain information about the spin of the electrons forming the Cooper pair. Not only do we observe a near perfect splitting of Cooper pairs into opposite-spin electrons (i.e. conventional singlet pairing), but also into equal-spin electrons, thus achieving triplet correlations between the quantum dots. Importantly, the exceptionally large spin-orbit interaction in our 2DEGs results in a strong triplet component, comparable in amplitude to the singlet pairing. The demonstration of CPS in a scalable and flexible platform provides a credible route to study on-chip entanglement and topological superconductivity in the form of artificial Kitaev chains.