Laboratoire de Nanotechnologie et d'Instrumentation Optique, Institut Charles Delaunay-CNRS UMR 6281, Université de technologie de Troyes, 12 rue Marie Curie, 10004, Troyes, France.
Nanotechnology. 2017 May 19;28(20):205207. doi: 10.1088/1361-6528/aa6815. Epub 2017 Mar 21.
One of the most explored single quantum emitters for the development of nanoscale fluorescence lifetime imaging is the nitrogen-vacancy (NV) color center in diamond. An NV center does not experience fluorescence bleaching or blinking at room temperature. Furthermore, its optical properties are preserved when embedded into nanodiamond hosts. This paper focuses on the modeling of the local density of states (LDOS) in a plasmonic nanofocusing structure with an NV center acting as local illumination sources. Numerical calculations of the LDOS near such a nanostructure were done with a classical electric dipole radiation placed inside a diamond sphere as well as near-field optical fluorescence lifetime imaging of the structure. We found that Purcell factors higher than ten can be reached with diamond nanospheres of radius less than 5 nm and at a distance of less than 20 nm from the surface of the structure. Although the spatial resolution of the experiment is limited by the size of the nanodiamond, our work supports the analysis and interpretation of a single NV color center in a nanodiamond as a probe for scanning near-field optical microscopy.
用于开发纳米级荧光寿命成像的最受探索的单个量子发射器之一是钻石中的氮空位(NV)色心。NV 色心在室温下不会经历荧光漂白或闪烁。此外,当嵌入纳米金刚石宿主中时,其光学性质得以保留。本文重点介绍了作为局部照明源的 NV 中心在等离子体纳米聚焦结构中的局域态密度(LDOS)的建模。通过在钻石球体内放置经典电偶极辐射以及对结构的近场光学荧光寿命成像,对这种纳米结构附近的 LDOS 进行了数值计算。我们发现,通过半径小于 5nm 的钻石纳米球,并且距离结构表面小于 20nm,可以达到高于 10 的普塞尔因子。尽管实验的空间分辨率受到纳米金刚石尺寸的限制,但我们的工作支持了将纳米金刚石中的单个 NV 色心作为扫描近场光学显微镜探针的分析和解释。