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Elemental (im-)miscibility determines phase formation of multinary nanoparticles co-sputtered in ionic liquids

Non-equilibrium synthesis methods allow the alloying of bulk-immiscible elements into multinary nanoparticles, which broadens the design space for new materials. Whereas sputtering onto solid substrates can combine immiscible elements into thin film solid solutions, this is not clear for sputtering...

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Autores principales: Meischein, Michael, Garzón-Manjón, Alba, Hammerschmidt, Thomas, Xiao, Bin, Zhang, Siyuan, Abdellaoui, Lamya, Scheu, Christina, Ludwig, Alfred
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9470033/
https://www.ncbi.nlm.nih.gov/pubmed/36133350
http://dx.doi.org/10.1039/d2na00363e
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author Meischein, Michael
Garzón-Manjón, Alba
Hammerschmidt, Thomas
Xiao, Bin
Zhang, Siyuan
Abdellaoui, Lamya
Scheu, Christina
Ludwig, Alfred
author_facet Meischein, Michael
Garzón-Manjón, Alba
Hammerschmidt, Thomas
Xiao, Bin
Zhang, Siyuan
Abdellaoui, Lamya
Scheu, Christina
Ludwig, Alfred
author_sort Meischein, Michael
collection PubMed
description Non-equilibrium synthesis methods allow the alloying of bulk-immiscible elements into multinary nanoparticles, which broadens the design space for new materials. Whereas sputtering onto solid substrates can combine immiscible elements into thin film solid solutions, this is not clear for sputtering of nanoparticles in ionic liquids. Thus, the suitability of sputtering in ionic liquids for producing nanoparticles of immiscible elements is investigated by co-sputtering the systems Au–Cu (miscible), Au–Ru and Cu–Ru (both immiscible), and Au–Cu–Ru on the surface of the ionic liquid 1-butyl-3-methylimidazolium bis(trifluoromethylsulfonyl)imide [Bmim][(Tf)(2)N]. The sputtered nanoparticles were analyzed to obtain (i) knowledge concerning the general formation process of nanoparticles when sputtering onto ionic liquid surfaces and (ii) information, if alloy nanoparticles of immiscible elements can be synthesized as well as (iii) evidence if the Hume-Rothery rules for solid solubility are valid for sputtered nanoparticles. Nanoparticle characteristics were found to depend on elemental miscibility: (1) nanoparticles from immiscible elemental combinations showed bigger mean diameters ranging from (3.3 ± 1.4) nm to (5.0 ± 1.7) nm in contrast to mean diameters of nanoparticles from elemental combinations with at least one miscible element pair ((1.7 ± 0.7) nm to (1.8 ± 0.6) nm). (2) Nanoparticles from immiscible combinations showed compositions with one element strongly dominating the ratio and very narrow differences between the highest and lowest fraction of the dominating element (Cu(94)Ru(6) to Cu(100)Ru(0); Au(96)Ru(4) to Au(99)Ru(1)) in contrast to the other compositions (Au(64)Cu(36) to Au(81)Cu(19); Au(83)Cu(13)Ru(4)/Au(75)Cu(22)Ru(3) to Au(87)Cu(11)Ru(2)). Accompanying atomistic simulations using density-functional theory for clusters of different size and ordering confirm that the miscibility of Au–Cu and the immiscibility of Au–Ru and Cu–Ru govern the thermodynamic stability of the nanoparticles. Based on the matching experimental and theoretical results for the NP/IL-systems concerning NP stability, a formation model of multinary NPs in ILs was developed.
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spelling pubmed-94700332022-09-20 Elemental (im-)miscibility determines phase formation of multinary nanoparticles co-sputtered in ionic liquids Meischein, Michael Garzón-Manjón, Alba Hammerschmidt, Thomas Xiao, Bin Zhang, Siyuan Abdellaoui, Lamya Scheu, Christina Ludwig, Alfred Nanoscale Adv Chemistry Non-equilibrium synthesis methods allow the alloying of bulk-immiscible elements into multinary nanoparticles, which broadens the design space for new materials. Whereas sputtering onto solid substrates can combine immiscible elements into thin film solid solutions, this is not clear for sputtering of nanoparticles in ionic liquids. Thus, the suitability of sputtering in ionic liquids for producing nanoparticles of immiscible elements is investigated by co-sputtering the systems Au–Cu (miscible), Au–Ru and Cu–Ru (both immiscible), and Au–Cu–Ru on the surface of the ionic liquid 1-butyl-3-methylimidazolium bis(trifluoromethylsulfonyl)imide [Bmim][(Tf)(2)N]. The sputtered nanoparticles were analyzed to obtain (i) knowledge concerning the general formation process of nanoparticles when sputtering onto ionic liquid surfaces and (ii) information, if alloy nanoparticles of immiscible elements can be synthesized as well as (iii) evidence if the Hume-Rothery rules for solid solubility are valid for sputtered nanoparticles. Nanoparticle characteristics were found to depend on elemental miscibility: (1) nanoparticles from immiscible elemental combinations showed bigger mean diameters ranging from (3.3 ± 1.4) nm to (5.0 ± 1.7) nm in contrast to mean diameters of nanoparticles from elemental combinations with at least one miscible element pair ((1.7 ± 0.7) nm to (1.8 ± 0.6) nm). (2) Nanoparticles from immiscible combinations showed compositions with one element strongly dominating the ratio and very narrow differences between the highest and lowest fraction of the dominating element (Cu(94)Ru(6) to Cu(100)Ru(0); Au(96)Ru(4) to Au(99)Ru(1)) in contrast to the other compositions (Au(64)Cu(36) to Au(81)Cu(19); Au(83)Cu(13)Ru(4)/Au(75)Cu(22)Ru(3) to Au(87)Cu(11)Ru(2)). Accompanying atomistic simulations using density-functional theory for clusters of different size and ordering confirm that the miscibility of Au–Cu and the immiscibility of Au–Ru and Cu–Ru govern the thermodynamic stability of the nanoparticles. Based on the matching experimental and theoretical results for the NP/IL-systems concerning NP stability, a formation model of multinary NPs in ILs was developed. RSC 2022-08-15 /pmc/articles/PMC9470033/ /pubmed/36133350 http://dx.doi.org/10.1039/d2na00363e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Meischein, Michael
Garzón-Manjón, Alba
Hammerschmidt, Thomas
Xiao, Bin
Zhang, Siyuan
Abdellaoui, Lamya
Scheu, Christina
Ludwig, Alfred
Elemental (im-)miscibility determines phase formation of multinary nanoparticles co-sputtered in ionic liquids
title Elemental (im-)miscibility determines phase formation of multinary nanoparticles co-sputtered in ionic liquids
title_full Elemental (im-)miscibility determines phase formation of multinary nanoparticles co-sputtered in ionic liquids
title_fullStr Elemental (im-)miscibility determines phase formation of multinary nanoparticles co-sputtered in ionic liquids
title_full_unstemmed Elemental (im-)miscibility determines phase formation of multinary nanoparticles co-sputtered in ionic liquids
title_short Elemental (im-)miscibility determines phase formation of multinary nanoparticles co-sputtered in ionic liquids
title_sort elemental (im-)miscibility determines phase formation of multinary nanoparticles co-sputtered in ionic liquids
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9470033/
https://www.ncbi.nlm.nih.gov/pubmed/36133350
http://dx.doi.org/10.1039/d2na00363e
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