论文标题

对电子激发,自旋轨道耦合效果和基于CR(IV)基于CR(IV)的分子码头中的自旋反应的计算见解

Computational Insights into Electronic Excitations, Spin-Orbit Coupling Effects, and Spin Decoherence in Cr(IV)-based Molecular Qubits

论文作者

Janicka, Karolina, Wysocki, Aleksander L., Park, Kyungwha

论文摘要

量子信息处理中点缺陷和掺杂剂的巨大成功使搜索具有类似特性的分子。与固态系统相比,大型化学空间中所需特性的灵活性和可调性具有很大的优势。基于Cr(IV)的分子家族,CR(IV)(Aryl)$ _ 4 $,在电子自旋态被光学初始化,读出和控制的地方证明了类似于点缺陷的特性。尽管开始了这一启动,但仍然有一个很大的房间,可以增强对分子吨至关重要的特性。在这里,我们为基于CR(IV)的分子的关键特性提供了计算洞察,该特性旨在有助于化学设计有效的分子码头。使用多差AB-INITIO方法,我们研究了具有略有不同配体的Cr(IV)(Aryl)$ _ 4 $分子的电子状态,表明零子线能量与实验一致,并且激发的旋转旋转三层和旋转态对小化学化学扰动非常敏感。通过添加自旋轨道相互作用,我们发现单轴零场分裂(ZFS)参数的符号对于所有被考虑的分子均为阴性,并通过非辐射性间间交叉讨论了光学诱导的自旋初始化。我们将(超级)超精致耦合到$^{53} $ cr核旋转以及$^{13} $ c和$^1 $ h核自旋,我们讨论了电子旋转折叠。我们表明,当分子具有大量的横向ZFS参数时,由于超过$^1 $ h核自旋的相互作用与$^1 $ h核自旋的相互作用逐渐减小,电子自旋子级别的分裂或扩展减小。

The great success of point defects and dopants in semiconductors for quantum information processing has invigorated a search for molecules with analogous properties. Flexibility and tunability of desired properties in a large chemical space have great advantages over solid-state systems. The properties analogous to point defects were demonstrated in Cr(IV)-based molecular family, Cr(IV)(aryl)$_4$, where the electronic spin states were optically initialized, read out, and controlled. Despite this kick-start, there is still a large room for enhancing properties crucial for molecular qubits. Here we provide computational insights into key properties of the Cr(IV)-based molecules aimed at assisting chemical design of efficient molecular qubits. Using the multireference ab-initio methods, we investigate the electronic states of Cr(IV)(aryl)$_4$ molecules with slightly different ligands, showing that the zero-phonon line energies agree with the experiment, and that the excited spin-triplet and spin-singlet states are highly sensitive to small chemical perturbations. By adding spin-orbit interaction, we find that the sign of the uniaxial zero-field splitting (ZFS) parameter is negative for all considered molecules, and discuss optically-induced spin initialization via non-radiative intersystem crossing. We quantify (super)hyperfine coupling to the $^{53}$Cr nuclear spin and to the $^{13}$C and $^1$H nuclear spins, and we discuss electron spin decoherence. We show that the splitting or broadening of the electronic spin sub-levels due to superhyperfine interaction with $^1$H nuclear spins decreases by an order of magnitude when the molecules have a substantial transverse ZFS parameter.

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