论文标题

通过产品Jahn-Teller效应中性IV组人工原子Qubits在钻石中的中性旋转式淬火

Strong Spin-Orbit Quenching via the Product Jahn-Teller Effect in Neutral Group IV Artificial Atom Qubits in Diamond

论文作者

Ciccarino, Christopher J., Flick, Johannes, Harris, Isaac B., Trusheim, Matthew E., Englund, Dirk R., Narang, Prineha

论文摘要

钻石中的人工原子量子位已成为一系列固态量子系统的领先候选者,从量子传感器到中继器节点的记忆增强量子通信。由SI,GE,SN和PB掺杂剂组成的反与对称组IV空位中心具有特别的希望,因为它们中性带电的电子构型导致地面自旋三重态,从而使长期自旋相干性在低温之上。然而,尽管对这些缺陷产生了极大的兴趣,但对这些中心的电子和自旋结构的理论理解仍然难以捉摸。在这种情况下,我们预测了第一个原理中立IV组颜色中心的地面和激发状态特性。我们捕获了激发态歧管中的​​产物Jahn-Teller效应,以在电子音波耦合中的二阶到二阶,并对自旋轨道耦合的效果进行非扰动处理。重要的是,我们发现自旋轨道分裂由于主导的Jahn-Teller效应而被强烈淬灭,其光学活性$^3e_u $状态最低,薄弱地分为$ M_S $分辨状态。中性IV组颜色中心的预测复杂振动光谱对于它们的实验鉴定至关重要,并且对这些系统在量子信息科学中的使用具有关键意义。

Artificial atom qubits in diamond have emerged as leading candidates for a range of solid-state quantum systems, from quantum sensors to repeater nodes in memory-enhanced quantum communication. Inversion-symmetric group IV vacancy centers, comprised of Si, Ge, Sn and Pb dopants, hold particular promise as their neutrally charged electronic configuration results in a ground-state spin triplet, enabling long spin coherence above cryogenic temperatures. However, despite the tremendous interest in these defects, a theoretical understanding of the electronic and spin structure of these centers remains elusive. In this context, we predict the ground- and excited-state properties of the neutral group IV color centers from first principles. We capture the product Jahn-Teller effect found in the excited state manifold to second order in electron-phonon coupling, and present a non-perturbative treatment of the effect of spin-orbit coupling. Importantly, we find that spin-orbit splitting is strongly quenched due to the dominant Jahn-Teller effect, with the lowest optically-active $^3E_u$ state weakly split into $m_s$-resolved states. The predicted complex vibronic spectra of the neutral group IV color centers are essential for their experimental identification and have key implications for use of these systems in quantum information science.

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