论文标题

6 nm使用纳米尺度的白光源对碳纳米管进行6 nm超分辨率光传递和散射光谱成像

6 nm super-resolution optical transmission and scattering spectroscopic imaging of carbon nanotubes using a nanometer-scale white light source

论文作者

Ma, Xuezhi, Liu, Qiushi, Yu, Ning, Xu, Da, Kim, Sanggon, Liu, Zebin, Jiang, Kaili, Wong, Bryan M., Yan, Ruoxue, Liu, Ming

论文摘要

基于可见光和相邻频率的光子的吸收和光子散射的光学高光谱成像表示材料研究中最有用和最包含的表征方法之一。不幸的是,受光的衍射极限的限制,它无法在光结合相互作用中解析纳米级不均匀性,这是材料结构和特性中局部调制的诊断。此外,许多纳米材料具有高度各向异性的光学特性,这些特性却具有出色的吸引力但难以通过常规光学方法来表征。因此,在包括电子,光子学,物理学和材料科学在内的各种领域的需求不断增加,将光光谱成像扩展到纳米长度尺度。在这项工作中,我们报告了一种超分辨率的高光谱成像技术,该技术同时通过钨卤代灯的照明来测量光吸收和散射光谱。我们在可见的和近红外波长(415至980 nm)中显示了亚第5 nm的空间分辨率,用于对紧张的单壁碳纳米管(SWNT)的高光谱成像,并重建了真正的彩色图像,以揭示纵向和横向光学过渡性的光吸收的光吸收和散射。这是第一次在SWNT中清楚地观察到SWNT中的横向光学吸收。这项新技术提供了丰富的近场光谱信息,这使得沿着通过应变工程引起的单个SWNT分析了频段结构的空间调制。

Optical hyperspectral imaging based on absorption and scattering of photons at the visible and adjacent frequencies denotes one of the most informative and inclusive characterization methods in material research. Unfortunately, restricted by the diffraction limit of light, it is unable to resolve the nanoscale inhomogeneity in light-matter interactions, which is diagnostic of the local modulation in material structure and properties. Moreover, many nanomaterials have highly anisotropic optical properties that are outstandingly appealing yet hard to characterize through conventional optical methods. Therefore, there has been a pressing demand in the diverse fields including electronics, photonics, physics, and materials science to extend the optical hyperspectral imaging into the nanometer length scale. In this work, we report a super-resolution hyperspectral imaging technique that simultaneously measures optical absorption and scattering spectra with the illumination from a tungsten-halogen lamp. We demonstrated sub-5 nm spatial resolution in both visible and near-infrared wavelengths (415 to 980 nm) for the hyperspectral imaging of strained single-walled carbon nanotubes (SWNT) and reconstructed true-color images to reveal the longitudinal and transverse optical transition-induced light absorption and scattering in the SWNTs. This is the first time transverse optical absorption in SWNTs were clearly observed experimentally. The new technique provides rich near-field spectroscopic information that had made it possible to analyze the spatial modulation of band-structure along a single SWNT induced through strain engineering.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源