Lindner Sarah, Rahbany Nancy, Pauly Christoph, Gines Laia, Mandal Soumen, Williams Oliver A, Muzha Andreas, Krueger Anke, Bachelot Renaud, Couteau Christophe, Becher Christoph
University of Graz, Universitätsplatz 5, Graz, 8010, AUSTRIA.
Department of Physics and Astronomy, Faculty of Natural and Applied Sciences, Notre Dame University Louaize, PO Box 11-0236, Riad El-Solh, Zouk Mosbeh, 72, LEBANON.
Nanotechnology. 2025 Jan 13. doi: 10.1088/1361-6528/ada961.
Color centers are promising single-photon emitters owing to their operation at room temperature and high photostability. In particular, using nanodiamonds as a host material is of interest for sensing and metrology. Furthermore, being a solid-state system allows for incorporation to photonic systems to tune both the emission intensity and photoluminescence spectrum and therefore adapt the individual color center to desired properties. We show successful coupling of a single nanodiamond hosting silicon-vacancy color centers to a plasmonic double bowtie antenna structure. To predict the spectrum of the coupled system, the photoluminescence spectrum of the SiV centers was measured before the coupling process and convoluted with the antenna resonance spectrum. After transferring the nanodiamond to the antenna the combined spectrum was measured again. The measurement agrees well with the calculated prediction of the coupled system and therefore confirms successful coupling.
色心由于其在室温下的工作性能和高光稳定性,是很有前景的单光子发射体。特别是,使用纳米金刚石作为主体材料对于传感和计量学很有意义。此外,作为一种固态系统,它可以集成到光子系统中,以调节发射强度和光致发光光谱,从而使单个色心适应所需的特性。我们展示了将承载硅空位色心的单个纳米金刚石成功耦合到等离子体双蝴蝶结天线结构。为了预测耦合系统的光谱,在耦合过程之前测量了SiV中心的光致发光光谱,并与天线共振光谱进行卷积。将纳米金刚石转移到天线上后,再次测量了组合光谱。测量结果与耦合系统的计算预测结果非常吻合,因此证实了成功耦合。