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CryoTEM as an Advanced Analytical Tool for Materials Chemists

[Image: see text] Morphology plays an essential role in chemistry through the segregation of atoms and/or molecules into different phases, delineated by interfaces. This is a general process in materials synthesis and exploited in many fields including colloid chemistry, heterogeneous catalysis, and...

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Autores principales: Patterson, Joseph P., Xu, Yifei, Moradi, Mohammad-Amin, Sommerdijk, Nico A. J. M., Friedrich, Heiner
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2017
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5518272/
https://www.ncbi.nlm.nih.gov/pubmed/28665585
http://dx.doi.org/10.1021/acs.accounts.7b00107
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author Patterson, Joseph P.
Xu, Yifei
Moradi, Mohammad-Amin
Sommerdijk, Nico A. J. M.
Friedrich, Heiner
author_facet Patterson, Joseph P.
Xu, Yifei
Moradi, Mohammad-Amin
Sommerdijk, Nico A. J. M.
Friedrich, Heiner
author_sort Patterson, Joseph P.
collection PubMed
description [Image: see text] Morphology plays an essential role in chemistry through the segregation of atoms and/or molecules into different phases, delineated by interfaces. This is a general process in materials synthesis and exploited in many fields including colloid chemistry, heterogeneous catalysis, and functional molecular systems. To rationally design complex materials, we must understand and control morphology evolution. Toward this goal, we utilize cryogenic transmission electron microscopy (cryoTEM), which can track the structural evolution of materials in solution with nanometer spatial resolution and a temporal resolution of <1 s. In this Account, we review examples of our own research where direct observations by cryoTEM have been essential to understanding morphology evolution in macromolecular self-assembly, inorganic nucleation and growth, and the cooperative evolution of hybrid materials. These three different research areas are at the heart of our approach to materials chemistry where we take inspiration from the myriad examples of complex materials in Nature. Biological materials are formed using a limited number of chemical components and under ambient conditions, and their formation pathways were refined during biological evolution by enormous trial and error approaches to self-organization and biomineralization. By combining the information on what is possible in nature and by focusing on a limited number of chemical components, we aim to provide an essential insight into the role of structure evolution in materials synthesis. Bone, for example, is a hierarchical and hybrid material which is lightweight, yet strong and hard. It is formed by the hierarchical self-assembly of collagen into a macromolecular template with nano- and microscale structure. This template then directs the nucleation and growth of oriented, nanoscale calcium phosphate crystals to form the composite material. Fundamental insight into controlling these structuring processes will eventually allow us to design such complex materials with predetermined and potentially unique properties.
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spelling pubmed-55182722017-07-24 CryoTEM as an Advanced Analytical Tool for Materials Chemists Patterson, Joseph P. Xu, Yifei Moradi, Mohammad-Amin Sommerdijk, Nico A. J. M. Friedrich, Heiner Acc Chem Res [Image: see text] Morphology plays an essential role in chemistry through the segregation of atoms and/or molecules into different phases, delineated by interfaces. This is a general process in materials synthesis and exploited in many fields including colloid chemistry, heterogeneous catalysis, and functional molecular systems. To rationally design complex materials, we must understand and control morphology evolution. Toward this goal, we utilize cryogenic transmission electron microscopy (cryoTEM), which can track the structural evolution of materials in solution with nanometer spatial resolution and a temporal resolution of <1 s. In this Account, we review examples of our own research where direct observations by cryoTEM have been essential to understanding morphology evolution in macromolecular self-assembly, inorganic nucleation and growth, and the cooperative evolution of hybrid materials. These three different research areas are at the heart of our approach to materials chemistry where we take inspiration from the myriad examples of complex materials in Nature. Biological materials are formed using a limited number of chemical components and under ambient conditions, and their formation pathways were refined during biological evolution by enormous trial and error approaches to self-organization and biomineralization. By combining the information on what is possible in nature and by focusing on a limited number of chemical components, we aim to provide an essential insight into the role of structure evolution in materials synthesis. Bone, for example, is a hierarchical and hybrid material which is lightweight, yet strong and hard. It is formed by the hierarchical self-assembly of collagen into a macromolecular template with nano- and microscale structure. This template then directs the nucleation and growth of oriented, nanoscale calcium phosphate crystals to form the composite material. Fundamental insight into controlling these structuring processes will eventually allow us to design such complex materials with predetermined and potentially unique properties. American Chemical Society 2017-06-30 2017-07-18 /pmc/articles/PMC5518272/ /pubmed/28665585 http://dx.doi.org/10.1021/acs.accounts.7b00107 Text en Copyright © 2017 American Chemical Society This is an open access article published under a Creative Commons Non-Commercial No Derivative Works (CC-BY-NC-ND) Attribution License (http://pubs.acs.org/page/policy/authorchoice_ccbyncnd_termsofuse.html) , which permits copying and redistribution of the article, and creation of adaptations, all for non-commercial purposes.
spellingShingle Patterson, Joseph P.
Xu, Yifei
Moradi, Mohammad-Amin
Sommerdijk, Nico A. J. M.
Friedrich, Heiner
CryoTEM as an Advanced Analytical Tool for Materials Chemists
title CryoTEM as an Advanced Analytical Tool for Materials Chemists
title_full CryoTEM as an Advanced Analytical Tool for Materials Chemists
title_fullStr CryoTEM as an Advanced Analytical Tool for Materials Chemists
title_full_unstemmed CryoTEM as an Advanced Analytical Tool for Materials Chemists
title_short CryoTEM as an Advanced Analytical Tool for Materials Chemists
title_sort cryotem as an advanced analytical tool for materials chemists
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5518272/
https://www.ncbi.nlm.nih.gov/pubmed/28665585
http://dx.doi.org/10.1021/acs.accounts.7b00107
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