约束硅量子点阵列的穿梭生成程序

IF 4.6
Naoto Sato;Tomonori Sekiguchi;Takeru Utsugi;Hiroyuki Mizuno
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引用次数: 0

摘要

在硅量子计算机中,单个电子被困在称为量子点的微观结构中,其自旋被用作量子位。对于量子比特的大规模集成,我们之前提出了一种在二维量子点阵列的行或列中共享控制门的方法。在我们的阵列中,电子的穿梭是一种有效的技术,可以独立操作目标量子比特并避免串扰。然而,由于穿梭也是使用共享控制门进行的,因此量子比特的运动受到复杂的约束。因此,我们提出了一个基于状态转换系统的形式化模型来描述阵列上的这些约束和操作过程。我们还提出了一种在约束条件下生成操作程序的方法。利用这种方法,我们提出了一种具体的16 × 8量子点阵列方法。通过将所提出的方法实现为量子编译器,我们证实了在实际时间内为任意量子电路生成操作程序是可能的。我们还证明了通过穿梭可以避免串扰,并且在这种情况下的保真度比不避免串扰时更高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Generating Shuttling Procedures for Constrained Silicon Quantum Dot Array
In silicon quantum computers, a single electron is trapped in a microstructure called a quantum dot, and its spin is used as a qubit. For large-scale integration of qubits, we previously proposed an approach of sharing a control gate in the row or column of a 2-D quantum dot array. In our array, the shuttling of electrons is a useful technique to operate the target qubit independently and avoid crosstalk. However, since the shuttling is also conducted using shared control gates, the movement of qubits is complexly constrained. We, therefore, propose a formal model based on state transition systems to describe those constraints and operation procedures on the array. We also present an approach to generate operation procedures under the constraints. Utilizing this approach, we present a concrete method for our 16 × 8 quantum dot array. By implementing the proposed method as a quantum compiler, we confirmed that it is possible to generate operation procedures in a practical amount of time for arbitrary quantum circuits. We also demonstrated that crosstalk can be avoided by shuttling and that the fidelity in that case is higher than when crosstalk is not avoided.
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CiteScore
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