Shang Wuyun, Xiao Fajun, Zhu Weiren, Han Lei, Premaratne Malin, Mei Ting, Zhao Jianlin
Opt Express. 2019 Feb 18;27(4):4944-4955. doi: 10.1364/OE.27.004944.
We propose a scheme to extend the measuring range of a transverse displacement sensor by exploiting the interaction of an azimuthally polarized beam (APB) with a single metal-dielectric core-shell nanoparticle. The focused APB illumination induces a longitudinal magnetic dipole (MD) in the core-shell nanoparticle, which interferes with the induced transverse electric dipole (ED) to bring forth a transverse unidirectional scattering at a specific position within the focal plane. Emphatically, the rapidly varying electromagnetic field within the focal plane of an APB leads to a remarkable sensitivity of the far-field scattering directivity to nanoscale displacements as the nanoparticle moves away from the optical axis. Moreover, the scattering directivity of the APB illuminated core-shell nanoparticle is also a function of structure-dependent Mie scattering coefficients, rendering the measuring range of the transverse displacement sensor widely tunable. The culmination of all these features enables the continuous tuning of the displacement measuring range from several nanometers to a few micrometers. Thus, we envision the proposed scheme is of high value for modern optical nanometrology.
我们提出了一种方案,通过利用方位角偏振光束(APB)与单个金属-介质核壳纳米粒子的相互作用来扩展横向位移传感器的测量范围。聚焦的APB照明在核壳纳米粒子中诱导出一个纵向磁偶极子(MD),它与诱导的横向电偶极子(ED)相互干扰,在焦平面内的特定位置产生横向单向散射。重点是,当纳米粒子远离光轴时,APB焦平面内快速变化的电磁场导致远场散射方向性对纳米级位移具有显著的灵敏度。此外,APB照射的核壳纳米粒子的散射方向性也是与结构相关的米氏散射系数的函数,使得横向位移传感器的测量范围具有广泛的可调性。所有这些特性的 culmination(此处可能有误,推测为“结合”之类意思,暂按 culmination 翻译)使得位移测量范围能够从几纳米连续调谐到几微米。因此,我们设想所提出的方案对现代光学纳米计量学具有很高的价值。