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Shape-controllable and kinetically miscible Copper–Palladium bimetallic nanozymes with enhanced Fenton-like performance for biocatalysis

Bimetallic nanozymes have been emerging as essential catalysts due to their unique physicochemical properties from the monometallics. However, the access to optimize catalytic performance is often limited by the thermodynamic immiscibility and also heterogeneity. Thus, we present a one-step coreduct...

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Autores principales: Xie, Wensheng, Zhang, Genpei, Guo, Zhenhu, Huang, Hongye, Ye, Jielin, Gao, Xiaohan, Yue, Kai, Wei, Yen, Zhao, Lingyun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9520275/
https://www.ncbi.nlm.nih.gov/pubmed/36186845
http://dx.doi.org/10.1016/j.mtbio.2022.100411
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author Xie, Wensheng
Zhang, Genpei
Guo, Zhenhu
Huang, Hongye
Ye, Jielin
Gao, Xiaohan
Yue, Kai
Wei, Yen
Zhao, Lingyun
author_facet Xie, Wensheng
Zhang, Genpei
Guo, Zhenhu
Huang, Hongye
Ye, Jielin
Gao, Xiaohan
Yue, Kai
Wei, Yen
Zhao, Lingyun
author_sort Xie, Wensheng
collection PubMed
description Bimetallic nanozymes have been emerging as essential catalysts due to their unique physicochemical properties from the monometallics. However, the access to optimize catalytic performance is often limited by the thermodynamic immiscibility and also heterogeneity. Thus, we present a one-step coreduction strategy to prepare the miscible Cu–Pd bimetallic nanozymes with controllable shape and homogeneously alloyed structure. The homogeneity is systematically explored and luckily, the homogeneous introduction of Cu successfully endows Cu–Pd bimetallic nanozymes with enhanced Fenton-like efficiency. Density functional theory (DFT) theoretical calculation reveals that Cu–Pd bimetallic nanozymes exhibit smaller d-band center compared with Pd nanozymes. Easier adsorption of H(2)O(2) molecular contributed by the electronic structure of Cu significantly accelerate the catalytic process together with the strong repulsive interaction between H atom and Pd atom. In vitro cytotoxicity and intracellular ROS generation performance reveal the potential for in vivo biocatalysis. The strategy to construct kinetically miscible Cu–Pd bimetallic nanozymes will guide the development of bimetallic catalysts with excellent Fenton-like efficiency for biocatalytic nanomedicine.
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spelling pubmed-95202752022-09-30 Shape-controllable and kinetically miscible Copper–Palladium bimetallic nanozymes with enhanced Fenton-like performance for biocatalysis Xie, Wensheng Zhang, Genpei Guo, Zhenhu Huang, Hongye Ye, Jielin Gao, Xiaohan Yue, Kai Wei, Yen Zhao, Lingyun Mater Today Bio Full Length Article Bimetallic nanozymes have been emerging as essential catalysts due to their unique physicochemical properties from the monometallics. However, the access to optimize catalytic performance is often limited by the thermodynamic immiscibility and also heterogeneity. Thus, we present a one-step coreduction strategy to prepare the miscible Cu–Pd bimetallic nanozymes with controllable shape and homogeneously alloyed structure. The homogeneity is systematically explored and luckily, the homogeneous introduction of Cu successfully endows Cu–Pd bimetallic nanozymes with enhanced Fenton-like efficiency. Density functional theory (DFT) theoretical calculation reveals that Cu–Pd bimetallic nanozymes exhibit smaller d-band center compared with Pd nanozymes. Easier adsorption of H(2)O(2) molecular contributed by the electronic structure of Cu significantly accelerate the catalytic process together with the strong repulsive interaction between H atom and Pd atom. In vitro cytotoxicity and intracellular ROS generation performance reveal the potential for in vivo biocatalysis. The strategy to construct kinetically miscible Cu–Pd bimetallic nanozymes will guide the development of bimetallic catalysts with excellent Fenton-like efficiency for biocatalytic nanomedicine. Elsevier 2022-09-15 /pmc/articles/PMC9520275/ /pubmed/36186845 http://dx.doi.org/10.1016/j.mtbio.2022.100411 Text en © 2022 Published by Elsevier Ltd. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Full Length Article
Xie, Wensheng
Zhang, Genpei
Guo, Zhenhu
Huang, Hongye
Ye, Jielin
Gao, Xiaohan
Yue, Kai
Wei, Yen
Zhao, Lingyun
Shape-controllable and kinetically miscible Copper–Palladium bimetallic nanozymes with enhanced Fenton-like performance for biocatalysis
title Shape-controllable and kinetically miscible Copper–Palladium bimetallic nanozymes with enhanced Fenton-like performance for biocatalysis
title_full Shape-controllable and kinetically miscible Copper–Palladium bimetallic nanozymes with enhanced Fenton-like performance for biocatalysis
title_fullStr Shape-controllable and kinetically miscible Copper–Palladium bimetallic nanozymes with enhanced Fenton-like performance for biocatalysis
title_full_unstemmed Shape-controllable and kinetically miscible Copper–Palladium bimetallic nanozymes with enhanced Fenton-like performance for biocatalysis
title_short Shape-controllable and kinetically miscible Copper–Palladium bimetallic nanozymes with enhanced Fenton-like performance for biocatalysis
title_sort shape-controllable and kinetically miscible copper–palladium bimetallic nanozymes with enhanced fenton-like performance for biocatalysis
topic Full Length Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9520275/
https://www.ncbi.nlm.nih.gov/pubmed/36186845
http://dx.doi.org/10.1016/j.mtbio.2022.100411
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