论文标题

封闭的近场探针,用于非侵入性近场光学显微镜

Cloaked near-field probe for non-invasive near-field optical microscopy

论文作者

Arango, Felipe Bernal, Alpeggiani, Filippo, Conteduca, Donato, Opheij, Aron, Chen, Aobo, Abdelrahman, Mohamed I., Krauss, Thomas, Alu, Andrea, Monticone, Francesco, Kuipers, L.

论文摘要

近场扫描光学显微镜是一种功能强大的技术,用于成像衍射极限,该技术已广泛用于生物医学成像和纳米光子学。但是,当测量下的电磁场非常限制时,它们可能会因近场探针本身的存在而严重扰动。在这里,我们从散射 - 融合的隐形斗篷,Huygens-kerker散射器和遮挡的传感器中汲取灵感,我们设计和制造了一个隐身的近场探测器。我们表明,通过适当的纳米结构探针,可以控制和平衡其电和磁极化。结果,可以在很大程度上抑制探针诱导的扰动,从而有效地掩盖了近场探针,而无需阻止其测量能力。我们通过比较常规和纳米结构探针与代表性的纳米光子结构的相互作用(即1D光子晶体腔),在实验中证明了掩盖作用。我们的结果表明,通过工程探测的结构,可以系统地控制样品的谐振场上的背部进动,并在我们的大多数修改后的探针中将扰动降低> 70%,并在最佳的探针距离上最多可在100 nm的探针距离上使用一个数量级。我们的工作为经典和量子纳米系统的非侵入性近场光学显微镜铺平了道路。

Near-field scanning optical microscopy is a powerful technique for imaging below the diffraction limit, which has been extensively used in bio-medical imaging and nanophotonics. However, when the electromagnetic fields under measurement are strongly confined, they can be heavily perturbed by the presence of the near-field probe itself. Here, taking inspiration from scattering-cancellation invisibility cloaks, Huygens-Kerker scatterers, and cloaked sensors, we design and fabricate a cloaked near-field probe. We show that, by suitably nanostructuring the probe, its electric and magnetic polarizabilities can be controlled and balanced. As a result, probe-induced perturbations can be largely suppressed, effectively cloaking the near-field probe without preventing its ability to measure. We experimentally demonstrate the cloaking effect by comparing the interaction of conventional and nanostructured probes with a representative nanophotonic structure, namely, a 1D photonic-crystal cavity. Our results show that, by engineering the structure of the probe, one can systematically control its back-action on the resonant fields of the sample and decrease the perturbation by >70% with most of our modified probes, and by up to one order of magnitude for the best probe, at probe-sample distances of 100 nm. Our work paves the way for non-invasive near-field optical microscopy of classical and quantum nano-systems.

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