Observing processes of nanoscale materials of low atomic number is possible using liquid phase electron microscopy (LP-EM). However, the achievable spatial resolution (d) is limited by radiation damage. Here, we examine a strategy for optimizing LP-EM experiments based on an analytical model and experimental measurements, and develop a method for quantifying image quality at ultra low electron dose De using scanning transmission electron microscopy (STEM). As experimental test case we study the formation of a colloidal binary system containing 30 nm diameter SiO2 nanoparticles (SiONPs), and 100 nm diameter polystyrene microspheres (PMs). We show that annular dark field (DF) STEM is preferred over bright field (BF) STEM for practical reasons...
The microscopic world at the atomic scale seems very remote from our daily lives. Still, we exploit ...
We report an innovative method to explore the optimal experimental settings to detect light atoms fr...
Innovations in liquid-phase electron microscopy (LP-EM) have made it possible to perform experiments...
Observing processes of nanoscale materials of low atomic number is possible using liquid phase elect...
Many functional materials are difficult to analyse by scanning transmission electron microscopy (STE...
Quantitative scanning transmission electron microscopy (STEM) allows composition determination for n...
Many functional materials are difficult to analyze by Scanning Transmission Electron Microscopy (STE...
Many functional materials are difficult to analyse by scanning transmission electron microscopy (STE...
It is of great technological interest to control the organization of nanoparticles (NPs) into functi...
Scanning electron microscopy is capable to provide chemical information on specimens interesting for...
We describe a type of scanning electron microscope that works by directly imaging the electron field...
Abstract The Use of Liquid Phase Transmission Electron Microscopy for Quantifying Interactions Betwe...
The microscopic world at the atomic scale seems very remote from our daily lives. Still, we exploit ...
We report an innovative method to explore the optimal experimental settings to detect light atoms fr...
Innovations in liquid-phase electron microscopy (LP-EM) have made it possible to perform experiments...
Observing processes of nanoscale materials of low atomic number is possible using liquid phase elect...
Many functional materials are difficult to analyse by scanning transmission electron microscopy (STE...
Quantitative scanning transmission electron microscopy (STEM) allows composition determination for n...
Many functional materials are difficult to analyze by Scanning Transmission Electron Microscopy (STE...
Many functional materials are difficult to analyse by scanning transmission electron microscopy (STE...
It is of great technological interest to control the organization of nanoparticles (NPs) into functi...
Scanning electron microscopy is capable to provide chemical information on specimens interesting for...
We describe a type of scanning electron microscope that works by directly imaging the electron field...
Abstract The Use of Liquid Phase Transmission Electron Microscopy for Quantifying Interactions Betwe...
The microscopic world at the atomic scale seems very remote from our daily lives. Still, we exploit ...
We report an innovative method to explore the optimal experimental settings to detect light atoms fr...
Innovations in liquid-phase electron microscopy (LP-EM) have made it possible to perform experiments...