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Method for analyzing HR-TEM micrographs to propose and/or describe structures and their interaction in crystalline materials

A general and versatile method for the analysis and processing of HR–TEM data useful for several applications is presented. The first utility is to identify the structures seen in the micrographs; also can be extended to propose the interaction of structure dynamics between various phases; and also...

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Autores principales: Obeso–Estrella, R., Pawelec, B., Mota, N., Flores–Sanchez, L.A., Quintana–Melgoza, J.M., Yocupicio–Gaxiola, R.I., Zepeda, T.A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9523379/
https://www.ncbi.nlm.nih.gov/pubmed/36187157
http://dx.doi.org/10.1016/j.mex.2022.101855
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author Obeso–Estrella, R.
Pawelec, B.
Mota, N.
Flores–Sanchez, L.A.
Quintana–Melgoza, J.M.
Yocupicio–Gaxiola, R.I.
Zepeda, T.A.
author_facet Obeso–Estrella, R.
Pawelec, B.
Mota, N.
Flores–Sanchez, L.A.
Quintana–Melgoza, J.M.
Yocupicio–Gaxiola, R.I.
Zepeda, T.A.
author_sort Obeso–Estrella, R.
collection PubMed
description A general and versatile method for the analysis and processing of HR–TEM data useful for several applications is presented. The first utility is to identify the structures seen in the micrographs; also can be extended to propose the interaction of structure dynamics between various phases; and also it can be hybridized with the chemical method to make a proposal of new structure and/or phase. The general method consisted of four steps: 1) micrograph pretreatment, 2) measurement of planar distances, 3) structure identification, and 4) structure corroboration. Crystallographic planes were immediately identified by comparing the interplanar distances. Next, crystallographic data were collected from the Crystal Structures Database (ICSD) and introduced into Diamond software to visualize the planes in each structure. In addition, from the zone axis point of view it must show the planes aligned, similar as is observed in the HR–TEM micrograph. • It was possible establish the growth mechanism of the different structures by identifying how is the structural interaction between the different oxides and sulfide phases. • Method was successful applied to propose a new TiCoMoS sulfide phase through HR–TEM results. • The method can also be extended to other areas where structural studies with HR–TEM are viable, such as biology, electronics, among others.
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spelling pubmed-95233792022-10-01 Method for analyzing HR-TEM micrographs to propose and/or describe structures and their interaction in crystalline materials Obeso–Estrella, R. Pawelec, B. Mota, N. Flores–Sanchez, L.A. Quintana–Melgoza, J.M. Yocupicio–Gaxiola, R.I. Zepeda, T.A. MethodsX Method Article A general and versatile method for the analysis and processing of HR–TEM data useful for several applications is presented. The first utility is to identify the structures seen in the micrographs; also can be extended to propose the interaction of structure dynamics between various phases; and also it can be hybridized with the chemical method to make a proposal of new structure and/or phase. The general method consisted of four steps: 1) micrograph pretreatment, 2) measurement of planar distances, 3) structure identification, and 4) structure corroboration. Crystallographic planes were immediately identified by comparing the interplanar distances. Next, crystallographic data were collected from the Crystal Structures Database (ICSD) and introduced into Diamond software to visualize the planes in each structure. In addition, from the zone axis point of view it must show the planes aligned, similar as is observed in the HR–TEM micrograph. • It was possible establish the growth mechanism of the different structures by identifying how is the structural interaction between the different oxides and sulfide phases. • Method was successful applied to propose a new TiCoMoS sulfide phase through HR–TEM results. • The method can also be extended to other areas where structural studies with HR–TEM are viable, such as biology, electronics, among others. Elsevier 2022-09-21 /pmc/articles/PMC9523379/ /pubmed/36187157 http://dx.doi.org/10.1016/j.mex.2022.101855 Text en © 2022 The Author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Method Article
Obeso–Estrella, R.
Pawelec, B.
Mota, N.
Flores–Sanchez, L.A.
Quintana–Melgoza, J.M.
Yocupicio–Gaxiola, R.I.
Zepeda, T.A.
Method for analyzing HR-TEM micrographs to propose and/or describe structures and their interaction in crystalline materials
title Method for analyzing HR-TEM micrographs to propose and/or describe structures and their interaction in crystalline materials
title_full Method for analyzing HR-TEM micrographs to propose and/or describe structures and their interaction in crystalline materials
title_fullStr Method for analyzing HR-TEM micrographs to propose and/or describe structures and their interaction in crystalline materials
title_full_unstemmed Method for analyzing HR-TEM micrographs to propose and/or describe structures and their interaction in crystalline materials
title_short Method for analyzing HR-TEM micrographs to propose and/or describe structures and their interaction in crystalline materials
title_sort method for analyzing hr-tem micrographs to propose and/or describe structures and their interaction in crystalline materials
topic Method Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9523379/
https://www.ncbi.nlm.nih.gov/pubmed/36187157
http://dx.doi.org/10.1016/j.mex.2022.101855
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