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模块化双量子比特系统中的光谱可寻址性。

Spectral Addressability in a Modular Two Qubit System.

作者信息

von Kugelgen Stephen, Krzyaniak Matthew D, Gu Mingqiang, Puggioni Danilo, Rondinelli James M, Wasielewski Michael R, Freedman Danna E

机构信息

Department of Chemistry, Northwestern University, Evanston, Illinois 60208, United States.

The Institute for Sustainability and Energy at Northwestern, Northwestern University, Evanston, Illinois 60208, United States.

出版信息

J Am Chem Soc. 2021 Jun 2;143(21):8069-8077. doi: 10.1021/jacs.1c02417. Epub 2021 May 20.

Abstract

The combination of structural precision and reproducibility of synthetic chemistry is perfectly suited for the creation of chemical qubits, the core units of a quantum information science (QIS) system. By exploiting the atomistic control inherent to synthetic chemistry, we address a fundamental question of how the spin-spin distance between two qubits impacts electronic spin coherence. To achieve this goal, we designed a series of molecules featuring two spectrally distinct qubits, an early transition metal, Ti, and a late transition metal, Cu with increasing separation between the two metals. Crucially, we also synthesized the monometallic congeners to serve as controls. The spectral separation between the two metals enables us to probe each metal individually in the bimetallic species and compare it with the monometallic control samples. Across a range of 1.2-2.5 nm, we find that electron spins have a negligible effect on coherence times, a finding we attribute to the distinct resonance frequencies. Coherence times are governed, instead, by the distance to nuclear spins on the other qubit's ligand framework. This finding offers guidance for the design of spectrally addressable molecular qubits.

摘要

合成化学的结构精确性与可重复性相结合,非常适合用于创建化学量子比特,这是量子信息科学(QIS)系统的核心单元。通过利用合成化学固有的原子级控制,我们解决了一个基本问题,即两个量子比特之间的自旋 - 自旋距离如何影响电子自旋相干性。为实现这一目标,我们设计了一系列分子,这些分子具有两个光谱上不同的量子比特,一个是早期过渡金属钛(Ti),另一个是晚期过渡金属铜(Cu),且两种金属之间的间距逐渐增大。至关重要的是,我们还合成了单金属同系物作为对照。两种金属之间的光谱分离使我们能够在双金属物种中分别探测每种金属,并将其与单金属对照样品进行比较。在1.2 - 2.5纳米的范围内,我们发现电子自旋对相干时间的影响可忽略不计,我们将这一发现归因于不同的共振频率。相反,相干时间由与另一个量子比特配体框架上核自旋的距离决定。这一发现为可光谱寻址的分子量子比特的设计提供了指导。

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