Luis Fernando, Alonso Pablo J, Roubeau Olivier, Velasco Verónica, Zueco David, Aguilà David, Martínez Jesús I, Barrios Leoní A, Aromí Guillem
Instituto de Ciencia de Materiales de Aragón (ICMA), CSIC and Universidad de Zaragoza, Plaza San Francisco s/n, 50009, Zaragoza, Spain.
Dpto. de Física de la Materia Condensada, Universidad de Zaragoza, Pedro Cerbuna 12, 50009, Zaragoza, Spain.
Commun Chem. 2020 Nov 20;3(1):176. doi: 10.1038/s42004-020-00422-w.
Artificial magnetic molecules can host 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 available computational space and warrant universal operations. Here, we design, synthesize and fully characterize dissymetric molecular dimers hosting either one or two Gadolinium(III) ions. The strong sensitivity of Gadolinium magnetic anisotropy to its local coordination gives rise to different zero-field splittings at each metal site. As a result, the [LaGd] and [GdLu] complexes provide realizations of distinct spin qudits with eight unequally spaced levels. In the [Gd] dimer, these properties are combined with a Gd-Gd magnetic interaction, sufficiently strong to lift all level degeneracies, yet sufficiently weak to keep all levels within an experimentally accessible energy window. The spin Hamiltonian of this dimer allows a complete set of operations to act as a 64-dimensional all-electron spin qudit, or, equivalently, as six addressable qubits. Electron paramagnetic resonance experiments show that resonant transitions between different spin states can be coherently controlled, with coherence times T of the order of 1 µs limited by hyperfine interactions. Coordination complexes with embedded quantum functionalities are promising building blocks for quantum computation and simulation hybrid platforms.
人工磁性分子可以容纳多个自旋量子比特,进而能够实现小规模算法。为了具有实际用途,此类分子自旋处理器需要增加可用的计算空间并确保通用操作。在此,我们设计、合成并全面表征了含有一个或两个钆(III)离子的不对称分子二聚体。钆磁各向异性对其局部配位的强敏感性导致每个金属位点出现不同的零场分裂。结果,[LaGd]和[GdLu]配合物实现了具有八个不等间距能级的不同自旋量子位。在[Gd]二聚体中,这些特性与钆 - 钆磁相互作用相结合,其强度足以消除所有能级简并,但又足够弱,能使所有能级处于实验可及的能量窗口内。该二聚体的自旋哈密顿量允许一组完整的操作充当64维全电子自旋量子位,或者等效地充当六个可寻址量子比特。电子顺磁共振实验表明,不同自旋态之间的共振跃迁可以被相干控制,相干时间T约为1微秒,受超精细相互作用限制。具有嵌入式量子功能的配位化合物是量子计算和模拟混合平台很有前景的构建模块。