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首页> 外文期刊>Physical review. B, Condensed Matter And Materals Physics >Circuit design implementing longitudinal coupling: A scalable scheme for superconducting qubits
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Circuit design implementing longitudinal coupling: A scalable scheme for superconducting qubits

机译:实现纵向耦合的电路设计:超导量子位的可扩展方案

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We present a circuit construction for a fixed-frequency superconducting qubit and show how it can be scaled up to a grid with strictly local interactions. The circuit QED realization we propose implements σ_z type coupling between a superconducting qubit and any number of LC resonators. The resulting longitudinal coupling is inherently different from the usual σ_x type transverse coupling, which is the one that has been most commonly used for superconducting qubits. In a grid of fixed-frequency qubits and resonators with a particular pattern of always-on interactions, coupling is strictly confined to nearest and next-nearest neighbor resonators; there is never any direct qubit-qubit coupling. We note that just a single unique qubit frequency suffices for the scalability of this scheme. The same is true for the resonators, if the resonator-resonator coupling constants are varied instead. A controlled phase gate between two neighboring qubits can be realized with microwave drives on the qubits, without affecting the other qubits. This fact is a significant advantage for the scalability of this scheme.
机译:我们介绍了固定频率超导量子位的电路结构,并显示了如何通过严格的局部相互作用将其扩展到网格。我们提出的电路QED实现方案实现了超导量子位与任意数量的LC谐振器之间的σ_z型耦合。产生的纵向耦合本质上不同于通常的σ_x型横向耦合,后者是超导量子位最常用的耦合。在固定频率的量子位和具有始终在线相互作用的特定模式的谐振器的网格中,耦合严格限于最近和下一个最近的相邻谐振器。从来没有任何直接的量子位-量子位耦合。我们注意到,仅单个唯一的量子位频率就足以满足该方案的可扩展性。如果改变谐振器-谐振器的耦合常数,则对于谐振器也是如此。可以通过量子位上的微波驱动来实现两个相邻量子位之间的受控相位门,而不会影响其他量子位。对于该方案的可伸缩性,这一事实是一个重大优势。

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