Xu Xiaohui, Martin Zachariah O, Titze Michael, Wang Yongqiang, Sychev Demid, Henshaw Jacob, Lagutchev Alexei S, Htoon Han, Bielejec Edward S, Bogdanov Simeon I, Shalaev Vladimir M, Boltasseva Alexandra
Elmore Family School of Electrical and Computer Engineering, Birck Nanotechnology Center, Purdue University, West Lafayette, IN 47907, USA.
Sandia National Laboratories, Albuquerque, NM 87123, USA.
Nanophotonics. 2023 Feb 1;12(3):485-494. doi: 10.1515/nanoph-2022-0678. eCollection 2023 Feb.
Diamond color centers have been widely studied in the field of quantum optics. The negatively charged silicon vacancy (SiV) center exhibits a narrow emission linewidth at the wavelength of 738 nm, a high Debye-Waller factor, and unique spin properties, making it a promising emitter for quantum information technologies, biological imaging, and sensing. In particular, nanodiamond (ND)-based SiV centers can be heterogeneously integrated with plasmonic and photonic nanostructures and serve as biomarkers and intracellular thermometers. Out of all methods to produce NDs with SiV centers, ion implantation offers the unique potential to create controllable numbers of color centers in preselected individual NDs. However, the formation of single color centers in NDs with this technique has not been realized. We report the creation of single SiV centers featuring stable high-purity single-photon emission through Si implantation into NDs with an average size of ∼20 nm. We observe room temperature emission, with zero-phonon line wavelengths in the range of 730-800 nm and linewidths below 10 nm. Our results offer new opportunities for the controlled production of group-IV diamond color centers with applications in quantum photonics, sensing, and biomedicine.
金刚石色心在量子光学领域已得到广泛研究。带负电荷的硅空位(SiV)中心在738纳米波长处表现出窄的发射线宽、高的德拜-瓦勒因子以及独特的自旋特性,使其成为量子信息技术、生物成像和传感领域有前景的发光体。特别是,基于纳米金刚石(ND)的SiV中心可以与等离子体和光子纳米结构进行异质集成,并用作生物标志物和细胞内温度计。在所有制备具有SiV中心的纳米金刚石的方法中,离子注入具有在预先选定的单个纳米金刚石中创建可控数量色心的独特潜力。然而,用这种技术在纳米金刚石中形成单个色心尚未实现。我们报告了通过将硅注入平均尺寸约为20纳米的纳米金刚石中,创建了具有稳定高纯度单光子发射的单个SiV中心。我们观察到室温发射,零声子线波长在730 - 800纳米范围内,线宽低于10纳米。我们的结果为可控生产用于量子光子学、传感和生物医学的IV族金刚石色心提供了新机会。