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Rapid controllable synthesis of branched Au superparticles: formation mechanism of toggling the growth mode and their applications in optical broadband absorption

We develop a tunable, ultrafast (5 seconds), and mass-producible seed-mediated synthesis method to prepare branched Au superparticles consisting of multiple small Au island-like nanoparticles by a wet chemical route. We reveal and confirm the toggling formation mechanism of Au superparticles between...

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Autores principales: Zhong, Shichuan, Hang, Lifeng, Wen, Lulu, Zhang, Tao, Cao, An, Zeng, Pan, Zhang, Hanlin, Liu, Dilong, Cai, Weiping, Li, Yue
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10012854/
https://www.ncbi.nlm.nih.gov/pubmed/36926572
http://dx.doi.org/10.1039/d3na00008g
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author Zhong, Shichuan
Hang, Lifeng
Wen, Lulu
Zhang, Tao
Cao, An
Zeng, Pan
Zhang, Hanlin
Liu, Dilong
Cai, Weiping
Li, Yue
author_facet Zhong, Shichuan
Hang, Lifeng
Wen, Lulu
Zhang, Tao
Cao, An
Zeng, Pan
Zhang, Hanlin
Liu, Dilong
Cai, Weiping
Li, Yue
author_sort Zhong, Shichuan
collection PubMed
description We develop a tunable, ultrafast (5 seconds), and mass-producible seed-mediated synthesis method to prepare branched Au superparticles consisting of multiple small Au island-like nanoparticles by a wet chemical route. We reveal and confirm the toggling formation mechanism of Au superparticles between the Frank–van der Merwe (FM) growth mode and the Volmer–Weber (VW) growth mode. The key factor of this special structure is the frequent toggling between the FM (layer by layer) growth mode and the VW (island) growth mode induced by 3-aminophenol, which is continuously absorbed on the surface of newborn Au nanoparticles, leading to a relatively high surface energy during the overall synthesis process, thus achieving an island on island growth. Such Au superparticles demonstrate broadband absorption from visible to near-infrared regions due to their multiple plasmonic coupling and hence they have important applications in sensors, photothermal conversion and therapy, etc. We also exhibit the excellent properties of Au superparticles with different morphologies, such as NIR-II photothermal conversion and therapy and SERS detection. The photothermal conversion efficiency under 1064 nm laser irradiation was calculated to be as high as 62.6% and they exhibit robust photothermal therapy efficiency. This work provides insight into the growth mechanism of plasmonic superparticles and develops a broadband absorption material for highly efficient optical applications.
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spelling pubmed-100128542023-03-15 Rapid controllable synthesis of branched Au superparticles: formation mechanism of toggling the growth mode and their applications in optical broadband absorption Zhong, Shichuan Hang, Lifeng Wen, Lulu Zhang, Tao Cao, An Zeng, Pan Zhang, Hanlin Liu, Dilong Cai, Weiping Li, Yue Nanoscale Adv Chemistry We develop a tunable, ultrafast (5 seconds), and mass-producible seed-mediated synthesis method to prepare branched Au superparticles consisting of multiple small Au island-like nanoparticles by a wet chemical route. We reveal and confirm the toggling formation mechanism of Au superparticles between the Frank–van der Merwe (FM) growth mode and the Volmer–Weber (VW) growth mode. The key factor of this special structure is the frequent toggling between the FM (layer by layer) growth mode and the VW (island) growth mode induced by 3-aminophenol, which is continuously absorbed on the surface of newborn Au nanoparticles, leading to a relatively high surface energy during the overall synthesis process, thus achieving an island on island growth. Such Au superparticles demonstrate broadband absorption from visible to near-infrared regions due to their multiple plasmonic coupling and hence they have important applications in sensors, photothermal conversion and therapy, etc. We also exhibit the excellent properties of Au superparticles with different morphologies, such as NIR-II photothermal conversion and therapy and SERS detection. The photothermal conversion efficiency under 1064 nm laser irradiation was calculated to be as high as 62.6% and they exhibit robust photothermal therapy efficiency. This work provides insight into the growth mechanism of plasmonic superparticles and develops a broadband absorption material for highly efficient optical applications. RSC 2023-02-15 /pmc/articles/PMC10012854/ /pubmed/36926572 http://dx.doi.org/10.1039/d3na00008g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zhong, Shichuan
Hang, Lifeng
Wen, Lulu
Zhang, Tao
Cao, An
Zeng, Pan
Zhang, Hanlin
Liu, Dilong
Cai, Weiping
Li, Yue
Rapid controllable synthesis of branched Au superparticles: formation mechanism of toggling the growth mode and their applications in optical broadband absorption
title Rapid controllable synthesis of branched Au superparticles: formation mechanism of toggling the growth mode and their applications in optical broadband absorption
title_full Rapid controllable synthesis of branched Au superparticles: formation mechanism of toggling the growth mode and their applications in optical broadband absorption
title_fullStr Rapid controllable synthesis of branched Au superparticles: formation mechanism of toggling the growth mode and their applications in optical broadband absorption
title_full_unstemmed Rapid controllable synthesis of branched Au superparticles: formation mechanism of toggling the growth mode and their applications in optical broadband absorption
title_short Rapid controllable synthesis of branched Au superparticles: formation mechanism of toggling the growth mode and their applications in optical broadband absorption
title_sort rapid controllable synthesis of branched au superparticles: formation mechanism of toggling the growth mode and their applications in optical broadband absorption
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10012854/
https://www.ncbi.nlm.nih.gov/pubmed/36926572
http://dx.doi.org/10.1039/d3na00008g
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