朝向自旋波和顺磁自旋浴之间的量子界面

C. Gonzalez-Ballestero, T. Sar, O. Romero-Isart
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引用次数: 7

摘要

自旋波已成为下一代信息技术的候选信息载体。最近在金刚石中利用电子自旋检测它们的实验演示,为研究可控顺磁自旋浴对自旋波的反作用铺平了道路。在这里,我们提出了描述自旋波和顺磁自旋之间相互作用的量子理论。作为一个案例研究,我们考虑了在钇铁石榴石薄膜附近的金刚石中氮空位自旋系综。我们展示了系综的反向作用如何导致自旋波频谱和传播特性的强烈和可调谐的修改。这些改进包括完全抑制自旋波的传播,以及在不同的参数范围内,其传播长度增加了50%。此外,我们还展示了自旋波热波动如何诱导槽中顺磁自旋的可测量频移。这种位移导致热色散力,可以用金刚石机械谐振器进行光学和/或机械测量。此外,我们还利用我们的理论计算了自旋之间的自旋波介导的相互作用。我们表明,所有上述影响是可测量的最先进的实验。我们的研究结果为描述自旋波和自旋槽的混合量子系统提供了理论基础,并确立了量子自旋作为自旋电子学主动控制、传感和接口工具的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Towards a quantum interface between spin waves and paramagnetic spin baths
Spin waves have risen as promising candidate information carriers for the next generation of information technologies. Recent experimental demonstrations of their detection using electron spins in diamond pave the way towards studying the back-action of a controllable paramagnetic spin bath on the spin waves. Here, we present a quantum theory describing the interaction between spin waves and paramagnetic spins. As a case study we consider an ensemble of nitrogen-vacancy spins in diamond in the vicinity of an Yttrium-Iron-Garnet thin film. We show how the back-action of the ensemble results in strong and tuneable modifications of the spin-wave spectrum and propagation properties. These modifications include the full suppression of spin-wave propagation and, in a different parameter regime, the enhancement of their propagation length by $\sim 50\%$. Furthermore, we show how the spin wave thermal fluctuations induce a measurable frequency shift of the paramagnetic spins in the bath. This shift results in a thermal dispersion force that can be measured optically and/or mechanically with a diamond mechanical resonator. In addition, we use our theory to compute the spin wave-mediated interaction between the spins in the bath. We show that all the above effects are measurable by state-of-the-art experiments. Our results provide the theoretical foundation for describing hybrid quantum systems of spin waves and spin baths, and establish the potential of quantum spins as active control, sensing, and interfacing tools for spintronics.
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