Literature DB >> 22436336

Electron diffraction based analysis of phase fractions and texture in nanocrystalline thin films, part III: application examples.

J L Lábár1, M Adamik, B P Barna, Zs Czigány, Zs Fogarassy, Z E Horváth, O Geszti, F Misják, J Morgiel, G Radnóczi, G Sáfrán, L Székely, T Szüts.   

Abstract

In this series of articles, a method is presented that performs (semi)quantitative phase analysis for nanocrystalline transmission electron microscope samples from selected area electron diffraction (SAED) patterns. Volume fractions and degree of fiber texture are determined for the nanocrystalline components. The effect of the amorphous component is minimized by empirical background interpolation. First, the two-dimensional SAED pattern is converted into a one-dimensional distribution similar to X-ray diffraction. Volume fractions of the nanocrystalline components are determined by fitting the spectral components, calculated for the previously identified phases with a priori known structures. These Markers are calculated not only for kinematic conditions, but the Blackwell correction is also applied to take into account dynamic effects for medium thicknesses. Peak shapes and experimental parameters (camera length, etc.) are refined during the fitting iterations. Parameter space is explored with the help of the Downhill-SIMPLEX. The method is implemented in a computer program that runs under the Windows operating system. Part I presented the principles, while part II elaborated current implementation. The present part III demonstrates the usage and efficiency of the computer program by numerous examples. The suggested experimental protocol should be of benefit in experiments aimed at phase analysis using electron diffraction methods.

Year:  2012        PMID: 22436336     DOI: 10.1017/S1431927611012803

Source DB:  PubMed          Journal:  Microsc Microanal        ISSN: 1431-9276            Impact factor:   4.127


  6 in total

1.  Direct observation of a non-crystalline state of Li2S-P2S5 solid electrolytes.

Authors:  Hirofumi Tsukasaki; Shigeo Mori; Hideyuki Morimoto; Akitoshi Hayashi; Masahiro Tatsumisago
Journal:  Sci Rep       Date:  2017-06-23       Impact factor: 4.379

2.  Crystallization behavior of the Li2S-P2S5 glass electrolyte in the LiNi1/3Mn1/3Co1/3O2 positive electrode layer.

Authors:  Hirofumi Tsukasaki; Yota Mori; Misae Otoyama; So Yubuchi; Takamasa Asano; Yoshinori Tanaka; Takahisa Ohno; Shigeo Mori; Akitoshi Hayashi; Masahiro Tatsumisago
Journal:  Sci Rep       Date:  2018-04-18       Impact factor: 4.379

3.  Cave bacteria-induced amorphous calcium carbonate formation.

Authors:  Nóra Tünde Enyedi; Judit Makk; László Kótai; Bernadett Berényi; Szilvia Klébert; Zoltán Sebestyén; Zsombor Molnár; Andrea K Borsodi; Szabolcs Leél-Őssy; Attila Demény; Péter Németh
Journal:  Sci Rep       Date:  2020-05-26       Impact factor: 4.379

4.  Quantitative analysis of crystallinity in an argyrodite sulfide-based solid electrolyte synthesized via solution processing.

Authors:  So Yubuchi; Hirofumi Tsukasaki; Atsushi Sakuda; Shigeo Mori; Akitoshi Hayashi; Masahiro Tatsumisago
Journal:  RSC Adv       Date:  2019-05-08       Impact factor: 3.361

5.  Thermal behavior and microstructures of cathodes for liquid electrolyte-based lithium batteries.

Authors:  Hirofumi Tsukasaki; Wataru Fukuda; Hideyuki Morimoto; Toshihiro Arai; Shigeo Mori; Akitoshi Hayashi; Masahiro Tatsumisago
Journal:  Sci Rep       Date:  2018-10-23       Impact factor: 4.379

6.  High Resolution Powder Electron Diffraction in Scanning Electron Microscopy.

Authors:  Miroslav Slouf; Radim Skoupy; Ewa Pavlova; Vladislav Krzyzanek
Journal:  Materials (Basel)       Date:  2021-12-09       Impact factor: 3.623

  6 in total

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