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基于分子承载的自旋量子比特的绝热量子计算。

Adiabatic quantum computing with spin qubits hosted by molecules.

作者信息

Yamamoto Satoru, Nakazawa Shigeaki, Sugisaki Kenji, Sato Kazunobu, Toyota Kazuo, Shiomi Daisuke, Takui Takeji

机构信息

Department of Chemistry and Molecular Materials Science, Graduate School of Science, Osaka City University, 3-3-138, Sugimoto, Sumiyoshi, Osaka 558-8585, Japan.

出版信息

Phys Chem Chem Phys. 2015 Jan 28;17(4):2742-9. doi: 10.1039/c4cp04744c. Epub 2014 Dec 15.

Abstract

A molecular spin quantum computer (MSQC) requires electron spin qubits, which pulse-based electron spin/magnetic resonance (ESR/MR) techniques can afford to manipulate for implementing quantum gate operations in open shell molecular entities. Importantly, nuclear spins, which are topologically connected, particularly in organic molecular spin systems, are client qubits, while electron spins play a role of bus qubits. Here, we introduce the implementation for an adiabatic quantum algorithm, suggesting the possible utilization of molecular spins with optimized spin structures for MSQCs. We exemplify the utilization of an adiabatic factorization problem of 21, compared with the corresponding nuclear magnetic resonance (NMR) case. Two molecular spins are selected: one is a molecular spin composed of three exchange-coupled electrons as electron-only qubits and the other an electron-bus qubit with two client nuclear spin qubits. Their electronic spin structures are well characterized in terms of the quantum mechanical behaviour in the spin Hamiltonian. The implementation of adiabatic quantum computing/computation (AQC) has, for the first time, been achieved by establishing ESR/MR pulse sequences for effective spin Hamiltonians in a fully controlled manner of spin manipulation. The conquered pulse sequences have been compared with the NMR experiments and shown much faster CPU times corresponding to the interaction strength between the spins. Significant differences are shown in rotational operations and pulse intervals for ESR/MR operations. As a result, we suggest the advantages and possible utilization of the time-evolution based AQC approach for molecular spin quantum computers and molecular spin quantum simulators underlain by sophisticated ESR/MR pulsed spin technology.

摘要

分子自旋量子计算机(MSQC)需要电子自旋量子比特,基于脉冲的电子自旋/磁共振(ESR/MR)技术能够操控这些量子比特,以便在开壳层分子实体中实现量子门操作。重要的是,拓扑相连的核自旋,尤其是在有机分子自旋系统中,是客户量子比特,而电子自旋则充当总线量子比特的角色。在此,我们介绍一种绝热量子算法的实现方式,这表明具有优化自旋结构的分子自旋可能用于分子自旋量子计算机。我们以21的绝热分解问题为例,与相应的核磁共振(NMR)情况进行比较。选择了两个分子自旋:一个是由三个交换耦合电子组成的分子自旋作为仅含电子的量子比特,另一个是带有两个客户核自旋量子比特的电子总线量子比特。它们的电子自旋结构通过自旋哈密顿量中的量子力学行为得到了很好的表征。绝热量子计算/运算(AQC)的实现首次通过以完全可控的自旋操控方式建立有效自旋哈密顿量的ESR/MR脉冲序列来达成。所攻克的脉冲序列已与NMR实验进行比较,结果表明对应于自旋之间相互作用强度的CPU时间要快得多。在ESR/MR操作的旋转操作和脉冲间隔方面显示出显著差异。因此,我们提出了基于时间演化的AQC方法对于分子自旋量子计算机和分子自旋量子模拟器的优势及可能的应用,这一方法以复杂的ESR/MR脉冲自旋技术为基础。

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