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Visualization of the effect of additives on the nanostructures of individual bio-inspired calcite crystals

Soluble additives provide a versatile strategy for controlling crystallization processes, enabling selection of properties including crystal sizes, morphologies, and structures. The additive species can also be incorporated within the crystal lattice, leading for example to enhanced mechanical prope...

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Autores principales: Ihli, Johannes, Clark, Jesse N., Kanwal, Nasima, Kim, Yi-Yeoun, Holden, Mark A., Harder, Ross J., Tang, Chiu C., Ashbrook, Sharon E., Robinson, Ian K., Meldrum, Fiona C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6349071/
https://www.ncbi.nlm.nih.gov/pubmed/30774916
http://dx.doi.org/10.1039/c8sc03733g
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author Ihli, Johannes
Clark, Jesse N.
Kanwal, Nasima
Kim, Yi-Yeoun
Holden, Mark A.
Harder, Ross J.
Tang, Chiu C.
Ashbrook, Sharon E.
Robinson, Ian K.
Meldrum, Fiona C.
author_facet Ihli, Johannes
Clark, Jesse N.
Kanwal, Nasima
Kim, Yi-Yeoun
Holden, Mark A.
Harder, Ross J.
Tang, Chiu C.
Ashbrook, Sharon E.
Robinson, Ian K.
Meldrum, Fiona C.
author_sort Ihli, Johannes
collection PubMed
description Soluble additives provide a versatile strategy for controlling crystallization processes, enabling selection of properties including crystal sizes, morphologies, and structures. The additive species can also be incorporated within the crystal lattice, leading for example to enhanced mechanical properties. However, while many techniques are available for analyzing particle shape and structure, it remains challenging to characterize the structural inhomogeneities and defects introduced into individual crystals by these additives, where these govern many important material properties. Here, we exploit Bragg coherent diffraction imaging to visualize the effects of soluble additives on the internal structures of individual crystals on the nanoscale. Investigation of bio-inspired calcite crystals grown in the presence of lysine or magnesium ions reveals that while a single dislocation is observed in calcite crystals grown in the presence of lysine, magnesium ions generate complex strain patterns. Indeed, in addition to the expected homogeneous solid solution of Mg ions in the calcite lattice, we observe two zones comprising alternating lattice contractions and relaxation, where comparable alternating layers of high magnesium calcite have been observed in many magnesium calcite biominerals. Such insight into the structures of nanocomposite crystals will ultimately enable us to understand and control their properties.
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spelling pubmed-63490712019-02-15 Visualization of the effect of additives on the nanostructures of individual bio-inspired calcite crystals Ihli, Johannes Clark, Jesse N. Kanwal, Nasima Kim, Yi-Yeoun Holden, Mark A. Harder, Ross J. Tang, Chiu C. Ashbrook, Sharon E. Robinson, Ian K. Meldrum, Fiona C. Chem Sci Chemistry Soluble additives provide a versatile strategy for controlling crystallization processes, enabling selection of properties including crystal sizes, morphologies, and structures. The additive species can also be incorporated within the crystal lattice, leading for example to enhanced mechanical properties. However, while many techniques are available for analyzing particle shape and structure, it remains challenging to characterize the structural inhomogeneities and defects introduced into individual crystals by these additives, where these govern many important material properties. Here, we exploit Bragg coherent diffraction imaging to visualize the effects of soluble additives on the internal structures of individual crystals on the nanoscale. Investigation of bio-inspired calcite crystals grown in the presence of lysine or magnesium ions reveals that while a single dislocation is observed in calcite crystals grown in the presence of lysine, magnesium ions generate complex strain patterns. Indeed, in addition to the expected homogeneous solid solution of Mg ions in the calcite lattice, we observe two zones comprising alternating lattice contractions and relaxation, where comparable alternating layers of high magnesium calcite have been observed in many magnesium calcite biominerals. Such insight into the structures of nanocomposite crystals will ultimately enable us to understand and control their properties. Royal Society of Chemistry 2018-11-09 /pmc/articles/PMC6349071/ /pubmed/30774916 http://dx.doi.org/10.1039/c8sc03733g Text en This journal is © The Royal Society of Chemistry 2019 http://creativecommons.org/licenses/by/3.0/ This article is freely available. This article is licensed under a Creative Commons Attribution 3.0 Unported Licence (CC BY 3.0)
spellingShingle Chemistry
Ihli, Johannes
Clark, Jesse N.
Kanwal, Nasima
Kim, Yi-Yeoun
Holden, Mark A.
Harder, Ross J.
Tang, Chiu C.
Ashbrook, Sharon E.
Robinson, Ian K.
Meldrum, Fiona C.
Visualization of the effect of additives on the nanostructures of individual bio-inspired calcite crystals
title Visualization of the effect of additives on the nanostructures of individual bio-inspired calcite crystals
title_full Visualization of the effect of additives on the nanostructures of individual bio-inspired calcite crystals
title_fullStr Visualization of the effect of additives on the nanostructures of individual bio-inspired calcite crystals
title_full_unstemmed Visualization of the effect of additives on the nanostructures of individual bio-inspired calcite crystals
title_short Visualization of the effect of additives on the nanostructures of individual bio-inspired calcite crystals
title_sort visualization of the effect of additives on the nanostructures of individual bio-inspired calcite crystals
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6349071/
https://www.ncbi.nlm.nih.gov/pubmed/30774916
http://dx.doi.org/10.1039/c8sc03733g
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