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Polarization-controlled directional scattering for nanoscopic position sensing

机译:偏振控制的定向散射用于纳米位置感测

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摘要

Controlling the propagation and coupling of light to sub-wavelength antennas is a crucial prerequisite for many nanoscale optical devices. Recently, the main focus of attention has been directed towards high-refractive-index materials such as silicon as an integral part of the antenna design. This development is motivated by the rich spectral properties of individual high-refractive-index nanoparticles. Here we take advantage of the interference of their magnetic and electric resonances to achieve strong lateral directionality. For controlled excitation of a spherical silicon nanoantenna, we use tightly focused radially polarized light. The resultant directional emission depends on the antenna's position relative to the focus. This approach finds application as a novel position sensing technique, which might be implemented in modern nanometrology and super-resolution microscopy set-ups. We demonstrate in a proof-of-concept experiment that a lateral resolution in the Ångström regime can be achieved.
机译:控制光到亚波长天线的传播和耦合是许多纳米级光学设备的关键先决条件。近来,注意力的主要焦点已经集中在诸如硅的高折射率材料上,作为天线设计的组成部分。这种发展是由单个高折射率纳米粒子的丰富光谱特性所推动的。在这里,我们利用它们的磁共振和电子共振的干扰来实现强大的横向方向性。为了控制球形硅纳米天线的激发,我们使用紧密聚焦的径向偏振光。最终的定向发射取决于天线相对于焦点的位置。这种方法被发现是一种新颖的位置传感技术,可以在现代纳米计量学和超分辨率显微镜设置中实现。我们在概念验证实验中证明,可以在Ångström政权中实现横向分辨率。

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