论文标题
在光诱导的力显微镜中对光学选择性成像的理论分析
Theoretical Analysis of Optically Selective Imaging in Photoinduced Force Microscopy
论文作者
论文摘要
我们介绍了对复合分子系统的光诱导力显微镜(PIFM)测量的理论研究。使用离散的偶极近似,我们计算整个样品的自洽响应电场,包括PIFM尖端,底物和复合分子。与先前获得的尖端样本距离依赖关系相比,我们对PIFM对共振分子的测量具有更高的敏感性。 PIFM中尖端 - 基底纳米摄氏度诱导的增强的局部电场,可以高分辨率观察二聚体分子中禁止的光学电子过渡。我们研究了PIFM对二聚体分子的波长依赖性,并在对应于允许和禁止过渡的入射光波长处获得图像。我们揭示了这些PIFM图像随着局部电场向量的频率空间结构的巨大变化,并解决了不同类型的纳米颗粒以外的分辨率,用于光学允许的过渡。这项研究表明,PIFM基于纳米材料与光之间的微观相互作用提供了多方面的信息。
We present a theoretical study of the measurements of photoinduced force microscopy (PiFM) for composite molecular systems. Using the discrete dipole approximation, we calculate the self-consistent response electric field of the entire sample including the PiFM tip, substrate, and composite molecules. We demonstrate a higher sensitivity for the PiFM measurement on resonant molecules than by the previously obtained tip-sample distance dependency $z^{-4}$ owing of the multifold enhancement of the field between the localized electric field induced at the tip-substrate nanogap and the molecular polarization. The enhanced localized electric field induced at the tip-substrate nanogap in PiFM allows high-resolution observation of the forbidden optical electronic transition in dimer molecules. We investigated the wavelength dependence of PiFM for dimer molecules and obtained images at incident light wavelengths corresponding to allowed and forbidden transitions. We reveal that these PiFM images drastically change with the frequency-dependent spatial structures of the localized electric field vectors and resolve different types of nanoparticles beyond the resolution for the optically allowed transitions. This study demonstrates that PiFM provides multifaceted information based on microscopic interactions between nanomaterials and light.