The theoretical and experimental bases for quantitative electron microscopy of frozen-hydrated specimens are described, with special considerations of energy filtration to improve the images. The elastic and inelastic scattering from molecules in vacuum and in ice are calculated, and simple methods to approximate scattering are introduced. Multiple scattering calculations are used to describe the scattering from vitreous ice and to predict the characteristics of images of frozen-hydrated molecules as a function of ice thickness and accelerating voltage. Energy filtration is predicted to improve image contrast and signal-to-noise ratio. Experimental values for the inelastic scattering of ice, the energy spectrum of thick ice, and the contras...
Preparation of biological samples for transmission electron microscopy is not a trivial task. The sa...
International audienceThe value of an electron microscope equipped with a field emission gun (FEG) w...
Modem scanning electron microscopy yields structural information down to 2 to 5 nm from thin, beam t...
We have determined the absolute mass and radial scattering density distribution of tobacco mosaic vi...
We have determined the absolute mass and radial scattering density distribution of tobacco mosaic vi...
The methodology for preparing specimens in the frozen, hydrated state has been assessed using crysta...
Structure determination of biological macromolecules using cryogenic electron microscopy is based on...
Energy-filtered transmission electron microscopes operating in zero-loss mode are used increasingly ...
The preparation and high resolution observation of frozen hydrated thin sections has been studied by...
Transmission electron microscopy has provided most of what is known about the ultrastructural organi...
In this report, we applied annular bright-field (ABF) and annular dark-field (ADF) low-energy (30 ke...
Today's biomolecular electron microscopy uses essentially three different imaging modalities: (i) el...
The field of biological electron microcopy (EM) has evolved into a reliable imaging technique for ex...
Biological macromolecules such as enzymes are nanoscale machines. This is true in a concrete sense: ...
While recent technological developments contributed to breakthrough advances in single particle cryo...
Preparation of biological samples for transmission electron microscopy is not a trivial task. The sa...
International audienceThe value of an electron microscope equipped with a field emission gun (FEG) w...
Modem scanning electron microscopy yields structural information down to 2 to 5 nm from thin, beam t...
We have determined the absolute mass and radial scattering density distribution of tobacco mosaic vi...
We have determined the absolute mass and radial scattering density distribution of tobacco mosaic vi...
The methodology for preparing specimens in the frozen, hydrated state has been assessed using crysta...
Structure determination of biological macromolecules using cryogenic electron microscopy is based on...
Energy-filtered transmission electron microscopes operating in zero-loss mode are used increasingly ...
The preparation and high resolution observation of frozen hydrated thin sections has been studied by...
Transmission electron microscopy has provided most of what is known about the ultrastructural organi...
In this report, we applied annular bright-field (ABF) and annular dark-field (ADF) low-energy (30 ke...
Today's biomolecular electron microscopy uses essentially three different imaging modalities: (i) el...
The field of biological electron microcopy (EM) has evolved into a reliable imaging technique for ex...
Biological macromolecules such as enzymes are nanoscale machines. This is true in a concrete sense: ...
While recent technological developments contributed to breakthrough advances in single particle cryo...
Preparation of biological samples for transmission electron microscopy is not a trivial task. The sa...
International audienceThe value of an electron microscope equipped with a field emission gun (FEG) w...
Modem scanning electron microscopy yields structural information down to 2 to 5 nm from thin, beam t...