Department of Physics of Information in Matter and Center for Nanophotonics, NWO-I Institute AMOLF, Science Park 104, NL1098XH Amsterdam, Netherlands.
Institute of Physics, University of Amsterdam, NL1098XH Amsterdam, Netherlands.
Phys Rev Lett. 2023 Jan 6;130(1):016901. doi: 10.1103/PhysRevLett.130.016901.
In analogy to cavity optomechanics, enhancing specific sidebands of a Raman process with narrowband optical resonators would allow for parametric amplification, entanglement of light and molecular vibrations, and reduced transduction noise. We report on the demonstration of waveguide-addressable sideband-resolved surface-enhanced Raman scattering (SERS). We realized a hybrid plasmonic-photonic resonator consisting of a 1D photonic crystal cavity decorated with a sub-20 nm gap dimer nanoantenna. Hybrid resonances in the near-IR provide designer Q factors of 1000, and Q/V=(λ^{3}/10^{6})^{-1}, with SERS signal strength on par with levels found in state-of-the-art purely plasmonic systems. We evidence Fano line shapes in the SERS enhancement of organic molecules, and quantitatively separate out the pump enhancement and optical reservoir contributions.
类似于腔光机械学,利用窄带光学谐振器增强喇曼过程的特定边带,可以实现参量放大、光与分子振动的纠缠以及降低转换噪声。我们报告了波导可寻址边带分辨表面增强喇曼散射 (SERS) 的演示。我们实现了一个混合等离子体-光子谐振器,由一个用亚 20nm 间隙二聚体纳米天线装饰的一维光子晶体腔组成。近红外的混合共振提供了 1000 的设计 Q 因子,以及 Q/V=(λ^{3}/10^{6})^{-1},SERS 信号强度与最先进的纯等离子体系统相当。我们在有机分子的 SERS 增强中证明了 Fano 线形状,并定量分离出了泵浦增强和光学储层的贡献。