A Computation-Strengthened High-Dimensional Three-Qudit Toffoli Gate

IF 4.4 Q1 OPTICS Advanced quantum technologies Pub Date : 2024-08-20 DOI:10.1002/qute.202400313
Fang-Fang Du, Xue-Mei Ren, Qiu-Lin Tan
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Abstract

A high-dimensional quantum gate not only enables the processing of more information through parallel quantum channels but also enhances fault tolerance in a higher Hilbert space. In this paper, a protocol is presented for implementing a three-qudit 4 × 4 × 4 $4\times 4\times 4$ -Dimensional (D) Toffoli gate for a hybrid system, where the first control qudit, the second control qudit, and the target qudit of four dimension are encoded in the spatial-polarization state of a flying photon, the electron-spin state of the first two quantum dots (QDs), and the one of the remaining two QDs, respectively. Besides, the high-dimensional Toffoli gate does not require any assistance. Moreover, the gate operates deterministically in principle, as the photon is easy to manipulate feasibly using simple optical elements, and four QDs have a long electron-spin coherent time used for storage and manipulation. Furthermore, the success probability and fidelity of the high-dimensional Toffoli gate, in alignment with current technological capabilities, demonstrate satisfactory results. This indicates that it is feasible in experimental settings and promises a quantum computing paradigm that excels in speed, error resilience, and scalability for intricate quantum operations.

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计算强化型高维三库迪托福利门
高维量子门不仅能通过并行量子通道处理更多信息,还能在更高的希尔伯特空间增强容错能力。本文提出了一种为混合系统实现三量子-四维(D)托福利门的协议,其中四维的第一控制量子、第二控制量子和目标量子分别编码在飞行光子的空间偏振态、前两个量子点(QD)的电子自旋态和其余两个量子点的电子自旋态中。此外,高维托福利门不需要任何辅助。此外,由于光子易于使用简单的光学元件进行可行的操纵,且四个量子点具有用于存储和操纵的较长的电子-自旋相干时间,因此该门在原理上可确定性地运行。此外,高维托福利门的成功概率和保真度与当前的技术能力相一致,显示出令人满意的结果。这表明它在实验环境中是可行的,并有望成为一种在速度、抗错能力和复杂量子操作的可扩展性方面都很出色的量子计算范例。
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Issue Information (Adv. Quantum Technol. 2/2025) Front Cover: Spatial Distribution Control of Room-Temperature Single Photon Emitters in the Telecom Range from GaN Thin Films Grown on Patterned Sapphire Substrates (Adv. Quantum Technol. 2/2025) Back Cover: Direct-Laser-Written Polymer Nanowire Waveguides for Broadband Single Photon Collection from Epitaxial Quantum Dots into a Gaussian-like Mode (Adv. Quantum Technol. 2/2025) Recent Advances in Photonic Quantum Technologies Issue Information (Adv. Quantum Technol. 1/2025)
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