Many functional materials are difficult to analyse by scanning transmission electron microscopy (STEM) on account of their beam sensitivity and low contrast between different phases. The problem becomes even more severe when thick specimens need to be investigated, a situation that is common for materials that are ordered from the nanometre to micrometre length scales or when performing dynamic experiments in a TEM liquid cell. Here we report a method to optimize annular dark-field (ADF) STEM imaging conditions and detector geometries for a thick and beam-sensitive low-contrast specimen using the example of a carbon nanotube/polymer nanocomposite. We carried out Monte Carlo simulations as well as quantitative ADF-STEM imaging experiments to...
We have analyzed the nanoscale organization of various polymer systems by utilizing high-angle annul...
Characterization of core–shell type nanoparticles in 3D by transmission electron microscopy (TEM) ca...
The process of improving and producing novel nanomaterials requires visibil-ity at the nanoscale–som...
\u3cp\u3eMany functional materials are difficult to analyse by scanning transmission electron micros...
Many functional materials are difficult to analyse by scanning transmission electron microscopy (STE...
Many functional materials are difficult to analyze by Scanning Transmission Electron Microscopy (STE...
Observing processes of nanoscale materials of low atomic number is possible using liquid phase elect...
Quantitative scanning transmission electron microscopy (STEM) allows composition determination for n...
In electron microscopy, the maximum a posteriori (MAP) probability rule has been introduced as a too...
Recently developed detectors can deliver high resolution and high contrast images of nanostructured ...
AbstractRecently developed detectors can deliver high resolution and high contrast images of nanostr...
We have analyzed the nanoscale organization of various polymer systems by utilizing high-angle annul...
Characterization of core–shell type nanoparticles in 3D by transmission electron microscopy (TEM) ca...
The process of improving and producing novel nanomaterials requires visibil-ity at the nanoscale–som...
\u3cp\u3eMany functional materials are difficult to analyse by scanning transmission electron micros...
Many functional materials are difficult to analyse by scanning transmission electron microscopy (STE...
Many functional materials are difficult to analyze by Scanning Transmission Electron Microscopy (STE...
Observing processes of nanoscale materials of low atomic number is possible using liquid phase elect...
Quantitative scanning transmission electron microscopy (STEM) allows composition determination for n...
In electron microscopy, the maximum a posteriori (MAP) probability rule has been introduced as a too...
Recently developed detectors can deliver high resolution and high contrast images of nanostructured ...
AbstractRecently developed detectors can deliver high resolution and high contrast images of nanostr...
We have analyzed the nanoscale organization of various polymer systems by utilizing high-angle annul...
Characterization of core–shell type nanoparticles in 3D by transmission electron microscopy (TEM) ca...
The process of improving and producing novel nanomaterials requires visibil-ity at the nanoscale–som...