论文标题

基于SFQ的两分门的实际含义

Practical implications of SFQ-based two-qubit gates

论文作者

Jokar, Mohammad Reza, Rines, Richard, Chong, Frederic T.

论文摘要

当今的超导量子计算机的可伸缩性受到限制,因为从室温产生/路由微波控制脉冲的巨大成本。行业和学术界的一个积极研究领域是将经典控制器推向稀释冰箱,以提高量子计算机的可扩展性。超导单通量量子(SFQ)是一种具有低功耗和超高速度的经典逻辑技术,因此是具有最大可扩展性的毛线内经典控制器的有前途的候选人。先前的工作已经证明了基于SFQ的高保真单量门门。但是,几乎没有对基于SFQ的多量门进行的研究,这对于实现基于SFQ的通用量子计算是必不可少的。 在本文中,我们介绍了基于SFQ的两分门的首次彻底分析。我们的观察结果表明,基于SFQ的两倍大门往往会泄漏很高,以使其Qubit非计算子空间,这带来了严重的设计挑战。我们表明,尽管面临这些挑战,但我们可以通过仔细设计最佳控制方法和量子体系结构来实现具有高忠诚的大门。我们开发了抑制泄漏的最佳控制方法,还研究了减少泄漏的各种量子架构。经过仔细设计了我们的SFQ友好量量子系统后,我们表明它可以达到与基于微波炉的量子系统相似的门忠诚度和栅极时间。本文的有希望的结果表明,(1)基于SFQ的通用量子计算既可行又有效。 (2)SFQ是为量子机设计经典控制器的一种有前途的方法,因为它可以在保留门的保真度和性能的同时提高可扩展性。

Scalability of today's superconducting quantum computers is limited due to the huge costs of generating/routing microwave control pulses per qubit from room temperature. One active research area in both industry and academia is to push the classical controllers to the dilution refrigerator in order to increase the scalability of quantum computers. Superconducting Single Flux Quantum (SFQ) is a classical logic technology with low power consumption and ultra-high speed, and thus is a promising candidate for in-fridge classical controllers with maximized scalability. Prior work has demonstrated high-fidelity SFQ-based single-qubit gates. However, little research has been done on SFQ-based multi-qubit gates, which are necessary to realize SFQ-based universal quantum computing. In this paper, we present the first thorough analysis of SFQ-based two-qubit gates. Our observations show that SFQ-based two-qubit gates tend to have high leakage to qubit non-computational subspace, which presents severe design challenges. We show that despite these challenges, we can realize gates with high fidelity by carefully designing optimal control methods and qubit architectures. We develop optimal control methods that suppress leakage, and also investigate various qubit architectures that reduce the leakage. After carefully engineering our SFQ-friendly quantum system, we show that it can achieve similar gate fidelity and gate time to microwave-based quantum systems. The promising results of this paper show that (1) SFQ-based universal quantum computation is both feasible and effective; and (2) SFQ is a promising approach in designing classical controller for quantum machines because it can increase the scalability while preserving gate fidelity and performance.

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