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Entangled electron current through finite size normal-superconductor tunneling structures

机译:纠缠电子流通过有限尺寸的正超导体隧穿结构

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We investigate theoretically the simultaneous tunneling of two electrons from a superconductor into a normal metal at low temperatures and voltages. Such an emission process is shown to be equivalent to the Andreev reflection of an incident hole. We obtain a local tunneling Hamiltonian that permits to investigate transport through interfaces of arbitrary geometry and potential barrier shapes. We prove that the bilinear momentum dependence of the low-energy tunneling matrix element translates into a real space Hamiltonian involving the normal derivatives of the electron fields in each electrode. The angular distribution of the electron current as it is emitted into the normal metal is analyzed for various experimental setups. We show that, in a full three-dimensional problem, the neglect of the momentum dependence of tunneling causes a violation of unitarity and leads to the wrong thermodynamic (broad interface) limit. More importantly for current research on quantum information devices, in the case of an interface made of two narrow tunneling contacts separated by a distance r, the assumption of momentum-independent hopping yields a nonlocally entangled electron current that decays with a prefactor proportional to r(-2) instead of the correct r(-4).
机译:我们从理论上研究了在低温和低压下,两个电子从超导体到正常金属的同时隧穿。这种发射过程被证明等效于入射孔的安德列夫反射。我们获得了局部隧道哈密顿量,可以研究通过任意几何形状和势垒形状的界面的传输。我们证明低能量隧穿矩阵元素的双线性动量依赖性转化为包含每个电极中电子场的正态导数的真实空间哈密顿量。对于各种实验设置,分析了电子电流发射到正常金属中时的角度分布。我们表明,在一个完整的三维问题中,忽略隧穿的动量依赖性会导致违反单一性并导致错误的热力学(宽界面)极限。对于当前对量子信息设备的研究而言,更重要的是,在由两个间隔距离为r的狭窄隧道接触构成的界面的情况下,与动量无关的跳变的假设会产生非局部纠缠的电子电流,该电流以与r成比例的预因子衰减-2),而不是正确的r(-4)。

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