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Understanding Alkali Contamination in Colloidal Nanomaterials to Unlock Grain Boundary Impurity Engineering

[Image: see text] Metal nanogels combine a large surface area, a high structural stability, and a high catalytic activity toward a variety of chemical reactions. Their performance is underpinned by the atomic-level distribution of their constituents, yet analyzing their subnanoscale structure and co...

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Autores principales: Kim, Se-Ho, Yoo, Su-Hyun, Chakraborty, Poulami, Jeong, Jiwon, Lim, Joohyun, El-Zoka, Ayman A., Zhou, Xuyang, Stephenson, Leigh T., Hickel, Tilmann, Neugebauer, Jörg, Scheu, Christina, Todorova, Mira, Gault, Baptiste
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8778649/
https://www.ncbi.nlm.nih.gov/pubmed/34982554
http://dx.doi.org/10.1021/jacs.1c11680
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author Kim, Se-Ho
Yoo, Su-Hyun
Chakraborty, Poulami
Jeong, Jiwon
Lim, Joohyun
El-Zoka, Ayman A.
Zhou, Xuyang
Stephenson, Leigh T.
Hickel, Tilmann
Neugebauer, Jörg
Scheu, Christina
Todorova, Mira
Gault, Baptiste
author_facet Kim, Se-Ho
Yoo, Su-Hyun
Chakraborty, Poulami
Jeong, Jiwon
Lim, Joohyun
El-Zoka, Ayman A.
Zhou, Xuyang
Stephenson, Leigh T.
Hickel, Tilmann
Neugebauer, Jörg
Scheu, Christina
Todorova, Mira
Gault, Baptiste
author_sort Kim, Se-Ho
collection PubMed
description [Image: see text] Metal nanogels combine a large surface area, a high structural stability, and a high catalytic activity toward a variety of chemical reactions. Their performance is underpinned by the atomic-level distribution of their constituents, yet analyzing their subnanoscale structure and composition to guide property optimization remains extremely challenging. Here, we synthesized Pd nanogels using a conventional wet chemistry route, and a near-atomic-scale analysis reveals that impurities from the reactants (Na and K) are integrated into the grain boundaries of the poly crystalline gel, typically loci of high catalytic activity. We demonstrate that the level of impurities is controlled by the reaction condition. Based on ab initio calculations, we provide a detailed mechanism to explain how surface-bound impurities become trapped at grain boundaries that form as the particles coalesce during synthesis, possibly facilitating their decohesion. If controlled, impurity integration into grain boundaries may offer opportunities for designing new nanogels.
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spelling pubmed-87786492022-01-24 Understanding Alkali Contamination in Colloidal Nanomaterials to Unlock Grain Boundary Impurity Engineering Kim, Se-Ho Yoo, Su-Hyun Chakraborty, Poulami Jeong, Jiwon Lim, Joohyun El-Zoka, Ayman A. Zhou, Xuyang Stephenson, Leigh T. Hickel, Tilmann Neugebauer, Jörg Scheu, Christina Todorova, Mira Gault, Baptiste J Am Chem Soc [Image: see text] Metal nanogels combine a large surface area, a high structural stability, and a high catalytic activity toward a variety of chemical reactions. Their performance is underpinned by the atomic-level distribution of their constituents, yet analyzing their subnanoscale structure and composition to guide property optimization remains extremely challenging. Here, we synthesized Pd nanogels using a conventional wet chemistry route, and a near-atomic-scale analysis reveals that impurities from the reactants (Na and K) are integrated into the grain boundaries of the poly crystalline gel, typically loci of high catalytic activity. We demonstrate that the level of impurities is controlled by the reaction condition. Based on ab initio calculations, we provide a detailed mechanism to explain how surface-bound impurities become trapped at grain boundaries that form as the particles coalesce during synthesis, possibly facilitating their decohesion. If controlled, impurity integration into grain boundaries may offer opportunities for designing new nanogels. American Chemical Society 2022-01-04 2022-01-19 /pmc/articles/PMC8778649/ /pubmed/34982554 http://dx.doi.org/10.1021/jacs.1c11680 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Kim, Se-Ho
Yoo, Su-Hyun
Chakraborty, Poulami
Jeong, Jiwon
Lim, Joohyun
El-Zoka, Ayman A.
Zhou, Xuyang
Stephenson, Leigh T.
Hickel, Tilmann
Neugebauer, Jörg
Scheu, Christina
Todorova, Mira
Gault, Baptiste
Understanding Alkali Contamination in Colloidal Nanomaterials to Unlock Grain Boundary Impurity Engineering
title Understanding Alkali Contamination in Colloidal Nanomaterials to Unlock Grain Boundary Impurity Engineering
title_full Understanding Alkali Contamination in Colloidal Nanomaterials to Unlock Grain Boundary Impurity Engineering
title_fullStr Understanding Alkali Contamination in Colloidal Nanomaterials to Unlock Grain Boundary Impurity Engineering
title_full_unstemmed Understanding Alkali Contamination in Colloidal Nanomaterials to Unlock Grain Boundary Impurity Engineering
title_short Understanding Alkali Contamination in Colloidal Nanomaterials to Unlock Grain Boundary Impurity Engineering
title_sort understanding alkali contamination in colloidal nanomaterials to unlock grain boundary impurity engineering
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8778649/
https://www.ncbi.nlm.nih.gov/pubmed/34982554
http://dx.doi.org/10.1021/jacs.1c11680
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