表征(材料科学)
纳米尺度
纳米技术
材料科学
拉曼光谱
化学成像
拉曼散射
光学
高光谱成像
物理
计算机科学
人工智能
作者
Laurene Tetard,Ali Passian,R. H. Farahi,Thomas Thundat,Brian H. Davison
标识
DOI:10.1038/nnano.2015.168
摘要
The non-destructive, simultaneous chemical and physical characterization of materials at the nanoscale is an essential and highly sought-after capability. However, a combination of limitations imposed by Abbe diffraction, diffuse scattering, unknown subsurface, electromagnetic fluctuations and Brownian noise, for example, have made achieving this goal challenging. Here, we report a hybrid approach for nanoscale material characterization based on generalized nanomechanical force microscopy in conjunction with infrared photoacoustic spectroscopy. As an application, we tackle the outstanding problem of spatially and spectrally resolving plant cell walls. Nanoscale characterization of plant cell walls and the effect of complex phenotype treatments on biomass are challenging but necessary in the search for sustainable and renewable bioenergy. We present results that reveal both the morphological and compositional substructures of the cell walls. The measured biomolecular traits are in agreement with the lower-resolution chemical maps obtained with infrared and confocal Raman micro-spectroscopies of the same samples. These results should prove relevant in other fields such as cancer research, nanotoxicity, and energy storage and production, where morphological, chemical and subsurface studies of nanocomposites, nanoparticle uptake by cells and nanoscale quality control are in demand. A hybrid approach combining mechanical force microscopy and infrared photoacoustic spectroscopy is used to characterize the morphological and compositional substructures of plant cell walls with a lateral resolution better than 20 nm.
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