Most implementations of ptychography on the electron microscope operate in scanning transmission (STEM) mode, where a small focussed probe beam is rapidly scanned across the sample. In this paper we introduce a different approach based on near-field ptychography, where the focussed beam is replaced by a wide-field, structured illumination, realised through a purpose-designed etched Silicon Nitride window. We show that fields of view as large as 100 μm2 can be imaged using the new approach, and that quantitative electron phase images can be reconstructed from as few as nine near-field diffraction pattern measurements
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 ...
The aberration-corrected scanning transmission electron microscope (STEM) has emerged as a key tool ...
As it passes through a sample, an electron beam scatters, producing an exit wavefront rich in inform...
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 ...
The ability to image light elements in both crystalline and noncrystalline materials at near atomic ...
Since the introduction of direct electron detectors to scanning transmission electron microscopy (ST...
Diffractive imaging, in which image-forming optics are replaced by an inverse computation using scat...
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...
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 ...
The aberration-corrected scanning transmission electron microscope (STEM) has emerged as a key tool ...
As it passes through a sample, an electron beam scatters, producing an exit wavefront rich in inform...
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 ...
The ability to image light elements in both crystalline and noncrystalline materials at near atomic ...
Since the introduction of direct electron detectors to scanning transmission electron microscopy (ST...
Diffractive imaging, in which image-forming optics are replaced by an inverse computation using scat...
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...
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 ...
The aberration-corrected scanning transmission electron microscope (STEM) has emerged as a key tool ...