论文标题

单个HBN颜色中心的共振和声子辅助超快相干控制

Resonant and phonon-assisted ultrafast coherent control of a single hBN color center

论文作者

Preuß, Johann A., Groll, Daniel, Schmidt, Robert, Hahn, Thilo, Machnikowski, Paweł, Bratschitsch, Rudolf, Kuhn, Tilmann, de Vasconcellos, Steffen Michaelis, Wigger, Daniel

论文摘要

固态系统中的单光子发射器是可扩展量子技术的重要构件。最近,在宽间隙范德华绝缘子HBN中发现了量子光发射器。这些颜色中心由于其在温度升高和广泛的过渡能范围内的量子性能而引起了很大的关注。在这里,我们证明了与超快激光脉冲的单个HBN颜色中心的连贯的状态操纵,并在我们的联合实验理论研究中进行了调查,“电子系统和声子之间的耦合”。我们证明,连贯的控制不仅可以在光学转变上进行共同执行,从而可以访问反应性,而且还可以通过声子辅助执行,从而揭示了内部声子量子量子动力学。在光学声子的情况下,我们测量它们的脱碳,部分源于它们的非谐衰减。由声音声子的产生引起的诱导的逐渐变形表现为发射声子波数据包时相干控制信号的迅速减小。此外,我们证明了声子辅助过程与共振激发之间的量子叠加导致相干控制信号的超快振荡。我们的结果为超快声子量子状态控制在纳米级上铺平了道路,并为混合量子技术打开了新的有希望的观点。

Single-photon emitters in solid-state systems are important building blocks for scalable quantum technologies. Recently, quantum light emitters have been discovered in the wide-gap van der Waals insulator hBN. These color centers have attracted considerable attention due to their quantum performance at elevated temperatures and wide range of transition energies. Here, we demonstrate coherent state manipulation of a single hBN color center with ultrafast laser pulses and investigate in our joint experiment-theory study the coupling between the electronic system and phonons. We demonstrate that coherent control can not only be performed resonantly on the optical transition giving access to the decoherence but also phonon-assisted, which reveals the internal phonon quantum dynamics. In the case of optical phonons we measure their decoherence, stemming in part from their anharmonic decay. Dephasing induced by the creation of acoustic phonons manifests as a rapid decrease of the coherent control signal when traveling phonon wave packets are emitted. Furthermore, we demonstrate that the quantum superposition between a phonon-assisted process and the resonant excitation causes ultrafast oscillations of the coherent control signal. Our results pave the way for ultrafast phonon quantum state control on the nanoscale and open up a new promising perspective for hybrid quantum technologies.

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