Literature DB >> 29701816

Electron diffraction covering a wide angular range from Bragg diffraction to small-angle diffraction.

Hiroshi Nakajima1, Atsuhiro Kotani1, Ken Harada1,2, Shigeo Mori1.   

Abstract

We construct an electron optical system to investigate Bragg diffraction (the crystal lattice plane, 10-2 to 10-3 rad) with the objective lens turned off by adjusting the current in the intermediate lenses. A crossover was located on the selected-area aperture plane. Thus, the dark-field imaging can be performed by using a selected-area aperture to select Bragg diffraction spots. The camera length can be controlled in the range of 0.8-4 m without exciting the objective lens. Furthermore, we can observe the magnetic-field dependence of electron diffraction using the objective lens under weak excitation conditions. The diffraction mode for Bragg diffraction can be easily switched to a small-angle electron diffraction mode having a camera length of more than 100 m. We propose this experimental method to acquire electron diffraction patterns that depict an extensive angular range from 10-2 to 10-7 rad. This method is applied to analyze the magnetic microstructures in three distinct magnetic materials, i.e. a uniaxial magnetic structure of BaFe10.35Sc1.6Mg0.05O19, a martensite of a Ni-Mn-Ga alloy, and a helical magnetic structure of Ba0.5Sr1.5Zn2Fe12O22.

Entities:  

Year:  2018        PMID: 29701816     DOI: 10.1093/jmicro/dfy019

Source DB:  PubMed          Journal:  Microscopy (Oxf)        ISSN: 2050-5698            Impact factor:   1.571


  1 in total

1.  Lensless fourier transform electron holography applied to vortex beam analysis.

Authors:  Ken Harada; Yoshimasa A Ono; Yoshio Takahashi
Journal:  Microscopy (Oxf)       Date:  2020-05-21       Impact factor: 1.571

  1 in total

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