论文标题

旋转链中的平行纠缠门操作和双向量子通信

Parallel entangling gate operations and two-way quantum communication in spin chains

论文作者

Yousefjani, Rozhin, Bayat, Abolfazl

论文摘要

量子电路的功率是通过可以在系统连贯时间内执行的两量纠缠门的数量来确定的。在没有平行量子门操作的情况下,这将使量子模拟器限于浅电路。在这里,我们提出了一项协议,以并行化在空间分离的多个用户之间实现两量纠缠的门,并使用通常共享的旋转链数据库。我们的协议可以通过诱导每对量子位之间的有效相互作用而无需干扰其他量子力来起作用,因此,它增加了门操作的速率而无需创建串扰。这是通过适当地以两种不同策略的形式进行适当描述的哈密顿参数来实现的。参数的调整使不同的双向性特征状态负责实现不同远处矩形对之间的纠缠门。值得注意的是,我们的协议的性能是可靠的,可以增加数据库的长度和用户数量。此外,我们表明该协议可以忍受各种类型的疾病,并且适用于基于超导体的系统的背景。提出的协议可以用于实现双向量子通信。

The power of a quantum circuit is determined through the number of two-qubit entangling gates that can be performed within the coherence time of the system. In the absence of parallel quantum gate operations, this would make the quantum simulators limited to shallow circuits. Here, we propose a protocol to parallelize the implementation of two-qubit entangling gates between multiple users which are spatially separated, and use a commonly shared spin chain data-bus. Our protocol works through inducing effective interaction between each pair of qubits without disturbing the others, therefore, it increases the rate of gate operations without creating crosstalk. This is achieved by tuning the Hamiltonian parameters appropriately, described in the form of two different strategies. The tuning of the parameters makes different bilocalized eigenstates responsible for the realization of the entangling gates between different pairs of distant qubits. Remarkably, the performance of our protocol is robust against increasing the length of the data-bus and the number of users. Moreover, we show that this protocol can tolerate various types of disorders and is applicable in the context of superconductor-based systems. The proposed protocol can serve for realizing two-way quantum communication.

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