Department of Electrical Engineering and ‡Solid State Institute and Physics Department, Technion - Israel Institute of Technology , 32000 Haifa, Israel.
Nano Lett. 2017 Jul 12;17(7):4217-4222. doi: 10.1021/acs.nanolett.7b01088. Epub 2017 Jun 28.
The negatively charged nitrogen-vacancy (NV) color center in diamond is an important atom-like system for emergent quantum technologies and sensing at room temperature. The light emission rates and collection efficiency are key issues toward realizing NV-based quantum devices. In that aspect, we propose and experimentally demonstrate a selective and spatially localized method for enhancing the light-matter interaction of shallow NV centers in bulk diamonds. This was achieved by polarized doubly resonant plasmonic antennas, tuned to the NV phonon sideband transition peak in the red and the narrowband near infrared (NIR) singlet transition. We obtained a photoluminescence (PL) enhancement factor of about 10 from NV centers within the hot spot of the antenna area (excluding the extraction efficiency enhancement) and similar emission lifetime reduction. The functionality of the double resonance antenna is controlled by the impinging light polarization.
钻石中的带负电荷的氮空位(NV)色心是新兴量子技术和室温传感的重要类原子系统。光发射率和收集效率是实现基于 NV 的量子器件的关键问题。在这方面,我们提出并实验证明了一种选择性和空间局部化的方法,用于增强体钻石中浅层 NV 中心的光物质相互作用。这是通过调谐到 NV 声子边带跃迁峰值的偏振双共振等离子体天线以及窄带近红外(NIR)单线态跃迁来实现的。我们从天线区域的热点(不包括提取效率增强)内的 NV 中心获得了约 10 的光致发光(PL)增强因子,并观察到类似的发射寿命缩短。双共振天线的功能受入射光偏振的控制。