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Tip-sample electromagnetic interaction in the infrared: Effective polarizabilities, retarded image dipole model and near-field thermal radiation detection

机译:红外中的尖端样品电磁相互作用:有效极化率,延迟图像偶极子模型和近场热辐射检测

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摘要

We analyse how a probing particle modifies infrared electromagnetic near fields. The particle, assimilated to both electric and magnetic dipoles, represents the tip of an apertureless scanning optical near-field microscope (SNOM). We show that the interaction can be accounted for by ascribing to the particle effective dipole polarizabilities that add the effect of retardation to the one of the image dipole. Apart from these polarizabilities, the SNOM signal expression depends only on the fields without tip perturbation, shown to be closely related to the electromagnetic density of states (EM-LDOS) and essentially linked to the sample's optical properties, so that measuring local spectra of heated samples is equivalent to performing a local surface spectroscopy. We also analyse the case where the probing particle is hotter. We evaluate in this case the impact of the effective polarizabilities on the tip-sample near-field radiative heat transfer. We also show that such an heated probe above a surface also performs a surface spectroscopy. The calculations agree well with available experimental data.
机译:我们分析探测粒子如何修改红外电磁近场。被电偶极子和磁偶极子同化的粒子代表了无孔扫描光学近场显微镜(SNOM)的尖端。我们表明,相互作用可以通过归因于粒子的有效偶极子极化率,这将延迟效应添加到图像偶极子之一。除了这些极化率之外,SNOM信号的表达仅取决于没有尖端扰动的场,该场表明与状态的电磁密度(EM-LDOS)密切相关,并且基本上与样品的光学特性相关,因此可以测量加热的局部光谱样品相当于执行局部表面光谱学。我们还分析了探测粒子更热的情况。在这种情况下,我们评估了有效极化率对尖端样品近场辐射热传递的影响。我们还表明,这种在表面上方的加热探针也可以执行表面光谱分析。计算结果与可用的实验数据非常吻合。

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