In many physical and biological systems the transition from an amorphous to ordered native structure involves complex energy landscapes, and understanding such transformations requires not only their thermodynamics but also the structural dynamics during the process. Here, we extend our 4D visualization method with electron imaging to include the study of irreversible processes with a single pulse in the same ultrafast electron microscope (UEM) as used before in the single-electron mode for the study of reversible processes. With this augmentation, we report on the transformation of amorphous to crystalline structure with silicon as an example. A single heating pulse was used to initiate crystallization from the amorphous phase while a sing...
The in situ martensitic phase transformation of iron, a complex solid-state transition involving col...
With ultrafast electron microscopy (UEM), we report observation of the nanoscopic crystallization of...
With advances in spatial resolution reaching the atomic scale, two-dimensional (2D) and 3D imaging i...
In many physical and biological systems the transition from an amorphous to ordered native structure...
Electron microscopy is arguably the most powerful tool for spatial imaging of structures. As such, 2...
In this review, we highlight the progress made in the development of 4D ultrafast electron diffracti...
We report direct visualization of irreversible chemical reactions in space and time with 4D electron...
In this perspective we highlight developments and concepts in the field of 4D electron imaging. With...
The phase transition of crystalline ordering is a general phenomenon, but its evolution in space and...
In this Perspective, the evolutionary and revolutionary developments of ultrafast electron imaging a...
Progress has been made in the development of four-dimensional ultrafast electron microscopy, which e...
With advances in spatial resolution reaching the atomic scale, two-dimensional (2D) and 3D imaging i...
Four-dimensional multiple-cathode ultrafast electron microscopy is developed to enable the capture o...
imaging ■ Abstract In this review, we highlight the progress made in the development of 4D ultrafast...
The static structure of macromolecular assemblies can be mapped out with atomic-scale resolution by ...
The in situ martensitic phase transformation of iron, a complex solid-state transition involving col...
With ultrafast electron microscopy (UEM), we report observation of the nanoscopic crystallization of...
With advances in spatial resolution reaching the atomic scale, two-dimensional (2D) and 3D imaging i...
In many physical and biological systems the transition from an amorphous to ordered native structure...
Electron microscopy is arguably the most powerful tool for spatial imaging of structures. As such, 2...
In this review, we highlight the progress made in the development of 4D ultrafast electron diffracti...
We report direct visualization of irreversible chemical reactions in space and time with 4D electron...
In this perspective we highlight developments and concepts in the field of 4D electron imaging. With...
The phase transition of crystalline ordering is a general phenomenon, but its evolution in space and...
In this Perspective, the evolutionary and revolutionary developments of ultrafast electron imaging a...
Progress has been made in the development of four-dimensional ultrafast electron microscopy, which e...
With advances in spatial resolution reaching the atomic scale, two-dimensional (2D) and 3D imaging i...
Four-dimensional multiple-cathode ultrafast electron microscopy is developed to enable the capture o...
imaging ■ Abstract In this review, we highlight the progress made in the development of 4D ultrafast...
The static structure of macromolecular assemblies can be mapped out with atomic-scale resolution by ...
The in situ martensitic phase transformation of iron, a complex solid-state transition involving col...
With ultrafast electron microscopy (UEM), we report observation of the nanoscopic crystallization of...
With advances in spatial resolution reaching the atomic scale, two-dimensional (2D) and 3D imaging i...