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Undesired diffraction contrast was removed by tilting the specimen when the electron holograms were collected.
Unwanted diffraction contrast was removed by tilting the specimen when the electron holograms were collected.
To suppress undesired diffraction contrast, the specimen was slightly inclined when the electron holograms were acquired.
Imaging was carried out in HAADF and BF modes, yielding mass thickness and diffraction contrast information, respectively.
Diffraction contrast transmission electron microscopy (TEM) was performed to identify ordinary dislocations, superdislocations and twins.
Diffraction contrast and phase contrast microscopy studies confirm the occurrence of phase separation in both the alloys.
It supports X-ray fluorescence and (coherent) diffraction contrast, yielding elemental and structural information from inside the sample.
Diffraction contrast tomography (DCT) with synchrotron X-rays was used to map the three-dimensional microstructure of alumina.
Through diffraction contrast experiments, we find that these dislocations have Burgers vectors of the type a/6.
In situ irradiations were used to continuously follow the microstructure evolution during irradiation using both diffraction contrast imaging and recording of diffraction patterns.
In this work, cycle-by-cycle data of a small crack propagating in a beta metastable titanium alloy is available via phase and diffraction contrast tomography.
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