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Phase control in a spin-triplet SQUID

机译:自旋三重态SQUID中的相位控制

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It is now well established that a Josephson junction made from conventional spin-singlet superconductors containing ferromagnetic layers can carry spin-triplet supercurrent under certain conditions. The first experimental signature of that fact is the propagation of such supercurrent over long distances through strong ferromagnetic materials. Surprisingly, one of the most salient predictions of the theory has yet to be verified experimentally—namely, that a Josephson junction containing three magnetic layers with coplanar magnetizations should exhibit a ground-state phase shift of either zero or π depending on the relative orientations of those magnetizations. We demonstrate this property using Josephson junctions containing three different types of magnetic layers, chosen so that the magnetization of one layer can be switched by 180° without disturbing the other two. Phase-sensitive detection is accomplished using a superconducting quantum interference device, or SQUID. Such a phase-controllable junction could be used as the memory element in a fully superconducting computer.
机译:现在已经很好地证明,由包含铁磁层的常规自旋单极超导体制成的约瑟夫逊结在某些条件下可以携带自旋三重态超电流。这一事实的第一个实验特征是这种强电流通过强铁磁材料在长距离内的传播。出乎意料的是,该理论最显着的预测之一尚待通过实验验证,即,包含三个具有共面磁化强度的磁性层的约瑟夫逊结应根据其相对方向呈现零或π的基态相移。那些磁化。我们使用包含三种不同类型磁性层的约瑟夫逊结来证明这种特性,选择该磁性层的目的是使一层的磁化强度可以切换180°,而不会干扰其他两层。使用超导量子干涉仪或SQUID完成相敏检测。这样的相位可控结可用作完全超导计算机中的存储元件。

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