Aberration-corrected high-resolution transmission electron microscopy (HRTEM) has been applied to resolve the atomic structure of a complex layered crystal, (PbS)1.14NbS2, which comprises a high density of incommensurate interfaces. The strong suppression of image delocalization and the favourable contrast transfer under negative Cs imaging (NCSI) conditions have been exploited for obtaining HRTEM images which directly reveal the projected crystal structure and allow to study lattice imperfections, like stacking disorder and layer undulations, with atomic scale resolution. The advantages of aberration-corrected HRTEM over conventional HRTEM are demonstrated by direct comparison of experimental images and computer simulations
With the availability of resolution-boosting and delocalization-minimizing techniques, aberration-co...
Recently an electromagnetic hexapole system for the correction of the spherical aberration of the ob...
Aberration-corrected transmission electron microscopy allows us to image the structure of matter at ...
Two of the major applications of the high resolution transmission electron microscope (HRTEM) image-...
Aberration-corrected HRTEM is applied to explore the potential of NCSI contrast imaging to quantitat...
On the basis of a state-of-the-art aberration-corrected transmission electron microscope, the spheri...
This paper is an exploration of the behaviour of high-resolution transmission electron microscope (H...
Transmission electron microscopy is an indispensable tool in modern materials science. It enables th...
The design and construction of a double-hexapole aberration corrector has made it possible to build ...
Twenty-five years ago, the Cowley group at ASU pioneered the use of transmission electron microscopy...
High resolution transmission electron microscopy (HRTEM) has been extensively used as a structure ch...
Doped complex oxides show a wide range of interesting properties due to a strong interplay andcompet...
With improvements in the instrumental information limit and the simultaneous minimization of image d...
Transmission electron microscopy is an extremely powerful technique for direct characterization of l...
Despite the use of electrons with wavelengths of just a few picometers, spatial resolution in a tran...
With the availability of resolution-boosting and delocalization-minimizing techniques, aberration-co...
Recently an electromagnetic hexapole system for the correction of the spherical aberration of the ob...
Aberration-corrected transmission electron microscopy allows us to image the structure of matter at ...
Two of the major applications of the high resolution transmission electron microscope (HRTEM) image-...
Aberration-corrected HRTEM is applied to explore the potential of NCSI contrast imaging to quantitat...
On the basis of a state-of-the-art aberration-corrected transmission electron microscope, the spheri...
This paper is an exploration of the behaviour of high-resolution transmission electron microscope (H...
Transmission electron microscopy is an indispensable tool in modern materials science. It enables th...
The design and construction of a double-hexapole aberration corrector has made it possible to build ...
Twenty-five years ago, the Cowley group at ASU pioneered the use of transmission electron microscopy...
High resolution transmission electron microscopy (HRTEM) has been extensively used as a structure ch...
Doped complex oxides show a wide range of interesting properties due to a strong interplay andcompet...
With improvements in the instrumental information limit and the simultaneous minimization of image d...
Transmission electron microscopy is an extremely powerful technique for direct characterization of l...
Despite the use of electrons with wavelengths of just a few picometers, spatial resolution in a tran...
With the availability of resolution-boosting and delocalization-minimizing techniques, aberration-co...
Recently an electromagnetic hexapole system for the correction of the spherical aberration of the ob...
Aberration-corrected transmission electron microscopy allows us to image the structure of matter at ...