材料科学
功勋
激光线宽
折射率
表面等离子共振
光学
等离子体子
谐振器
表面等离子体子
光电子学
共振(粒子物理)
纳米技术
激光器
物理
粒子物理学
纳米颗粒
作者
Yang Shen,Kai He,Qiushun Zou,Shan Xing,Jiayuan Huang,Manchun Zheng,Xiaoyi She,Chongjun Jin
标识
DOI:10.1002/adfm.202108741
摘要
Abstract Plasmonic nanostructures offer an enticing prospect in many applications, ranging from lasing to biosensing, due to their unrivaled light concentration beyond the diffraction limit. However, this promise is substantially undercut by the intrinsically high losses in metals. Here, an experimental ultra‐high‐ Q plasmon resonance with a linewidth down to 2 nm ( Q ‐factor ≈ 350) and a resonance intensity of 51% in an ultrasmooth gold nanogroove array is reported. Such an experimental ultranarrow resonance arises from two key factors. First, a geometrical‐induced coupling between the Fabry–Pérot and Wood's anomaly modes significantly suppresses the groove array's radiative damping. Second, an ultrasmooth gold surface fabricated by template stripping minimizes its surface scattering and grain boundary scattering. Benefiting from this ultranarrow resonance, a figure of merit (FOM) of 284 and an FOM* of 617 in refraction index (RI) sensing under normally incident detection are demonstrated, the former of which is the record FOM in all reported broad‐RI‐range plasmonic RI sensors. The array is further demonstrated as a surface thickness sensor for detecting mercaptocarboxylic acids with the surface sensitivity of 0.18 nm/CH 2 , which suggests that the array is a promising platform for thickness detection of surface analytes and label‐free biomedical sensing.
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