The ability to image light elements in both crystalline and noncrystalline materials at near atomic resolution with an enhanced contrast is highly advantageous to understand the structure and properties of a wide range of beam sensitive materials including biological specimens and molecular hetero-structures. This requires the imaging system to have an efficient phase contrast transfer at both low and high spatial frequencies. In this work we introduce a new phase contrast imaging method in a scanning transmission electron microscope (STEM) using a pre-specimen phase plate in the probe forming aperture, combined with a fast pixelated detector to record diffraction patterns at every probe position, and phase reconstruction using ptychography...
Recent development in fast pixelated detector technology has allowed a two dimensional diffraction p...
Since the introduction of direct electron detectors to scanning transmission electron microscopy (ST...
The ability to image light elements in soft matter at atomic resolution enables unprecedented insigh...
The ability to image light elements in both crystalline and noncrystalline materials at near atomic ...
The ability to image light elements in both crystalline and noncrystalline materials at near atomic ...
The ability to image light elements in both crystalline and noncrystalline materials at near atomic ...
The ability to image light elements in both crystalline and noncrystalline materials at near atomic ...
In Part I of this series of two papers, we demonstrated the formation of a high efficiency phase-con...
In Part I of this series of two papers, we demonstrated the formation of a high efficiency phase-con...
The aberration-corrected scanning transmission electron microscope (STEM) has emerged as a key tool ...
Recent development in fast pixelated detector technology has allowed a two dimensional diffraction p...
Recent development in fast pixelated detector technology has allowed a two dimensional diffraction p...
Recent development in fast pixelated detector technology has allowed a two dimensional diffraction p...
Recent development in fast pixelated detector technology has allowed a two dimensional diffraction p...
The aberration-corrected scanning transmission electron microscope (STEM) has emerged as a key tool ...
Recent development in fast pixelated detector technology has allowed a two dimensional diffraction p...
Since the introduction of direct electron detectors to scanning transmission electron microscopy (ST...
The ability to image light elements in soft matter at atomic resolution enables unprecedented insigh...
The ability to image light elements in both crystalline and noncrystalline materials at near atomic ...
The ability to image light elements in both crystalline and noncrystalline materials at near atomic ...
The ability to image light elements in both crystalline and noncrystalline materials at near atomic ...
The ability to image light elements in both crystalline and noncrystalline materials at near atomic ...
In Part I of this series of two papers, we demonstrated the formation of a high efficiency phase-con...
In Part I of this series of two papers, we demonstrated the formation of a high efficiency phase-con...
The aberration-corrected scanning transmission electron microscope (STEM) has emerged as a key tool ...
Recent development in fast pixelated detector technology has allowed a two dimensional diffraction p...
Recent development in fast pixelated detector technology has allowed a two dimensional diffraction p...
Recent development in fast pixelated detector technology has allowed a two dimensional diffraction p...
Recent development in fast pixelated detector technology has allowed a two dimensional diffraction p...
The aberration-corrected scanning transmission electron microscope (STEM) has emerged as a key tool ...
Recent development in fast pixelated detector technology has allowed a two dimensional diffraction p...
Since the introduction of direct electron detectors to scanning transmission electron microscopy (ST...
The ability to image light elements in soft matter at atomic resolution enables unprecedented insigh...