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Perfect quantum transport in arbitrary spin networks

机译:任意自旋网络中的完美量子传输

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Spin chains have been proposed as wires to transport information between distributed registers in a quantum information processor. Unfortunately, the challenges in manufacturing linear chains with engineered couplings has hindered experimental implementations. Here we present strategies to achieve perfect quantum information transport in arbitrary spin networks. Our proposal is based on the weak coupling limit for pure state transport, where information is transferred between two end spins that are only weakly coupled to the rest of the network. This regime allows ignoring the complex, internal dynamics of the bulk network and relying on virtual transitions or on the coupling to a single bulk eigenmode. We further introduce control methods capable of tuning the transport process and achieve perfect fidelity with limited resources, involving only manipulation of the end qubits. These strategies could be thus applied not only to engineered systems with relaxed fabrication precision, but also to naturally occurring networks; specifically, we discuss the practical implementation of quantum state transfer between two separated nitrogen vacancy (NV) centers through a network of nitrogen substitutional impurities.
机译:已经提出自旋链作为在量子信息处理器中的分布式寄存器之间传输信息的导线。不幸的是,用工程联轴器制造线性链的挑战阻碍了实验的实施。在这里,我们提出在任意自旋网络中实现完美量子信息传输的策略。我们的建议是基于纯状态传输的弱耦合限制的,即在信息仅在与网络其余部分弱耦合的两个端点旋转之间传输信息。这种机制可以忽略体网络的复杂内部动态,而依靠虚拟过渡或与单个体本征模式的耦合。我们进一步介绍了一种控制方法,该方法能够调整传输过程并以有限的资源实现完美的保真度,仅涉及最终量子位的操作。这些策略因此不仅可以应用于具有宽松的制造精度的工程系统,而且可以应用于自然存在的网络。具体来说,我们讨论了通过氮取代杂质网络在两个分离的氮空位(NV)中心之间进行量子态转移的实际方法。

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