论文标题

一个不对称的[gd $ _ {2} $]协调分子二聚体托管六个可寻址旋转Qubits

A dissymmetric [Gd$_{2}$] coordination molecular dimer hosting six addressable spin qubits

论文作者

Luis, Fernando, Alonso, Pablo J., Roubeau, Olivier, Velasco, Verónica, Zueco, David, Aguila, David, Barrios, Leoní A., Aromí, Guillem

论文摘要

人造磁分子是一个或几个旋转Qubt的合适宿主,然后可以实现小规模算法。为了成为实际使用,这种分子自旋处理器需要增加可用计算空间的尺寸$ d $,并满足保证普遍操作的高度要求的条件。在这里,我们设计,合成并完全表征托有1或两个GD(III)离子的非偏分子二聚体。 GD(III)磁各向异性对其局部协调的对称性的强灵敏度会在每个配位地点引起不同的零场分布。结果,[lagd]和[gdlu]复合物提供了独特的$ d = 8 $ spin qudits的实现,而[gd $ _ {2} $]二聚体符合所有要求,包括一组完整的操作,以$ d = 64 $ d = 64 $ delectron spin qudit qudit(或equivalententy ass-equivalenty assable qubits)。电子顺磁共振共振实验表明,不同自旋状态之间的相关谐振转变可以连贯地控制,连贯的时间t $ _ {m} $ $ 1 $ $ $ $ $ s的订单限制为分子内分子超精美的互动。具有嵌入式量子功能的协调络合物是量子计算和仿真混合平台的有希望的构件。

Artificial magnetic molecules are suitable hosts to one or several spin qubits, which could then implement small-scale algorithms. In order to become of practical use, such molecular spin processors need to increase the dimension $d$ of the available computational space and fulfill the highly demanding conditions that warrant universal operations. Here, we design, synthesize and fully characterize dissymetric molecular dimers hosting either one or two Gd(III) ions. The strong sensitivity of Gd(III) magnetic anisotropy to the symmetry of its local coordination gives rise to different zero-field splittings at each coordination site. As a result, the [LaGd] and [GdLu] complexes provide realizations of distinct $d = 8$ spin qudits, whereas the [Gd$_{2}$] dimer meets all requirements, including a complete set of operations, to act as a $d = 64$ all-electron spin qudit (or, equivalenty, as six addressable qubits). Electron paramagnetic resonance experiments show that the relevant resonant transitions between different spin states can be coherently controlled, with coherence times T$_{M}$ of the order of $1$ $μ$s limited by intramolecular hyperfine interactions. Coordination complexes with embedded quantum functionalities are promising building blocks for quantum computation and simulation hybrid platforms.

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