光子线性簇态生成的解析保真度计算。

IF 11 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Rohit Prasad, Simon D. Reiß, Giora Peniakov, Yorick Reum, Peter van Loock, Sven Höfling, Tobias Huber-Loyola, Andreas Theo Pfenning
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引用次数: 0

摘要

通过精确定时的自旋光激发,半导体量子点或原子等光发射体可以被利用为线性光子簇态的源。这大大减少了实现容错光学量子计算所需的资源开销。在这里,我们开发了一种算法,该算法通过Lindner和Rudolph生成线性聚类状态的协议过程来解析跟踪全局密度矩阵。在此基础上,我们推导出一个计算所生成的线性光团态的纠缠门保真度和态保真度的模型。我们的模型考虑了各种误差来源,如自旋退相干和有限激发态寿命。此外,我们强调了每次光子发射时自旋相干性的部分重新初始化,消除了相干时间的硬限制。我们的框架为设备设计参数的成本改进权衡以及最佳工作点的确定提供了有价值的见解。对于自旋相干时间为t2∗= 535 ns,激发态寿命为τ = 23 ps的组合量子点,我们表明可以达到近统一纠缠门保真度以及3光子和7光子线性团簇态的近统一态保真度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analytical fidelity calculations for photonic linear cluster state generation

By precisely timed optical excitation of their spin, optical emitters such as semiconductor quantum dots or atoms can be harnessed as sources of linear photonic cluster states. This significantly reduces the required resource overhead to reach fault-tolerant optical quantum computing. Here, we develop an algorithm that analytically tracks the global density matrix through the process of the protocol for generating linear-cluster states by Lindner and Rudolph. From this we derive a model to calculate the entangling gate fidelity and the state fidelity of the generated linear optical cluster states. Our model factors in various sources of error, such as spin decoherence and the finite excited state lifetime. Additionally, we highlight the presence of partial reinitialization of spin coherence with each photon emission, eliminating the hard limitation of coherence time. Our framework provides valuable insight into the cost-to-improvement trade-offs for device design parameters as well as the identification of optimal working points. For a combined state-of-the-art quantum dot with a spin coherence time of \({T}_{2}^{*}=535\) ns and an excited state lifetime of \(\tau =23\) ps, we show that a near-unity entangling gate fidelity as well as near-unity state fidelity for 3-photon and 7-photon linear cluster states can be reached.

Graphical Abstract

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来源期刊
Nano Convergence
Nano Convergence Engineering-General Engineering
CiteScore
15.90
自引率
2.60%
发文量
50
审稿时长
13 weeks
期刊介绍: Nano Convergence is an internationally recognized, peer-reviewed, and interdisciplinary journal designed to foster effective communication among scientists spanning diverse research areas closely aligned with nanoscience and nanotechnology. Dedicated to encouraging the convergence of technologies across the nano- to microscopic scale, the journal aims to unveil novel scientific domains and cultivate fresh research prospects. Operating on a single-blind peer-review system, Nano Convergence ensures transparency in the review process, with reviewers cognizant of authors' names and affiliations while maintaining anonymity in the feedback provided to authors.
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