Chen C, Li H, Li H, Yang T
Opt Express. 2020 Mar 2;28(5):7051-7059. doi: 10.1364/OE.381773.
A quartz-tuning-fork shear-force microscope was used to demonstrate the gap size dependency of the resonance frequency for a nanosphere-mirror plasmonic antenna. The nanosphere was mounted at the end of a fiber taper scanning probe. A semi-transparent silicon film mirror was used to couple evanescent fields from incident light with the plasmonic antenna using an inverted optical microscope. The plasmon resonance spectra were acquired with a 0.4 nm-step gap size tuning resolution, and were confirmed by finite-difference time-domain simulations. The proposed technique provides a dynamic approach to tuning and detecting distance-dependent localized surface plasmon resonance with a sub-nanometer step resolution.
使用石英调谐叉剪切力显微镜来证明纳米球镜等离子体天线的共振频率与间隙尺寸的相关性。纳米球安装在光纤锥形扫描探针的末端。使用倒置光学显微镜,通过半透明硅膜镜将入射光的倏逝场与等离子体天线耦合。以0.4纳米步长的间隙尺寸调谐分辨率采集等离子体共振光谱,并通过时域有限差分模拟进行了验证。所提出的技术提供了一种动态方法,用于以亚纳米步长分辨率调谐和检测与距离相关的局域表面等离子体共振。