School of Mathematical and Physical Sciences, University of Technology Sydney, Ultimo, New South Wales 2007, Australia.
Nanoscale. 2018 Feb 1;10(5):2267-2274. doi: 10.1039/c7nr08249e.
The assembly of quantum nanophotonic systems with plasmonic resonators is important for fundamental studies of single photon sources as well as for on-chip information processing. In this work, we demonstrate the controllable nanoassembly of gold nanospheres with ultra-bright narrow-band quantum emitters in 2D layered hexagonal boron nitride (hBN). We utilize an atomic force microscope (AFM) tip to precisely position gold nanospheres to close proximity to the quantum emitters and observe the resulting emission enhancement and fluorescence lifetime reduction. The extreme emitter photostability permits analysis at high excitation powers, and delineation of absorption and emission enhancement caused by the plasmonic resonators. A fluorescence enhancement of over 300% is achieved experimentally for quantum emitters in hBN, with a radiative quantum efficiency of up to 40% and a saturated count rate in excess of 5 × 10 counts per s. Our results are promising for the future employment of quantum emitters in hBN for integrated nanophotonic devices and plasmonic based nanosensors.
将带有等离子体共振器的量子纳米光子系统组装起来,对于研究单光子源以及在片上信息处理都很重要。在这项工作中,我们展示了在二维层状六方氮化硼(hBN)中可控地纳米组装金纳米球与超亮窄带量子发射器。我们利用原子力显微镜(AFM)探针将金纳米球精确地定位到接近量子发射器的位置,并观察到由此产生的发射增强和荧光寿命缩短。由于发射器具有极高的光稳定性,因此可以在高激发功率下进行分析,并可以区分由等离子体共振器引起的吸收和发射增强。实验中,在 hBN 中的量子发射器实现了超过 300%的荧光增强,辐射量子效率高达 40%,饱和计数率超过每秒 5×10⁵ 个计数。我们的结果为未来在 hBN 中使用量子发射器来集成纳米光子器件和基于等离子体的纳米传感器提供了前景。