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Plasmonic Ag/Cu/PEG nanofluids prepared when solids meet liquids in the gas phase.
Biliak, Kateryna; Nikitin, Daniil; Ali-Ogly, Suren; Protsak, Mariia; Pleskunov, Pavel; Tosca, Marco; Sergievskaya, Anastasiya; Cornil, David; Cornil, Jérôme; Konstantinidis, Stephanos; Kosutová, Tereza; Cernochová, Zulfiya; Stepánek, Petr; Hanus, Jan; Kousal, Jaroslav; Hanyková, Lenka; Krakovský, Ivan; Choukourov, Andrei.
Afiliação
  • Biliak K; Department of Macromolecular Physics, Faculty of Mathematics and Physics, Charles University V Holesovickách 2 180 00 Prague Czech Republic choukourov@kmf.troja.mff.cuni.cz.
  • Nikitin D; Department of Macromolecular Physics, Faculty of Mathematics and Physics, Charles University V Holesovickách 2 180 00 Prague Czech Republic choukourov@kmf.troja.mff.cuni.cz.
  • Ali-Ogly S; Department of Macromolecular Physics, Faculty of Mathematics and Physics, Charles University V Holesovickách 2 180 00 Prague Czech Republic choukourov@kmf.troja.mff.cuni.cz.
  • Protsak M; Department of Macromolecular Physics, Faculty of Mathematics and Physics, Charles University V Holesovickách 2 180 00 Prague Czech Republic choukourov@kmf.troja.mff.cuni.cz.
  • Pleskunov P; Department of Macromolecular Physics, Faculty of Mathematics and Physics, Charles University V Holesovickách 2 180 00 Prague Czech Republic choukourov@kmf.troja.mff.cuni.cz.
  • Tosca M; Department of Macromolecular Physics, Faculty of Mathematics and Physics, Charles University V Holesovickách 2 180 00 Prague Czech Republic choukourov@kmf.troja.mff.cuni.cz.
  • Sergievskaya A; ELI-Beamlines Centre, Institute of Physics, Czech Academy of Sciences Dolni Brezany Czech Republic.
  • Cornil D; Plasma-Surface Interaction Chemistry (ChIPS), University of Mons Place du Parc 20 7000 Mons Belgium.
  • Cornil J; Laboratory for Chemistry of Novel Materials, University of Mons Place du Parc 23 B-7000 Mons Belgium.
  • Konstantinidis S; Laboratory for Chemistry of Novel Materials, University of Mons Place du Parc 23 B-7000 Mons Belgium.
  • Kosutová T; Plasma-Surface Interaction Chemistry (ChIPS), University of Mons Place du Parc 20 7000 Mons Belgium.
  • Cernochová Z; Department of Condensed Matter Physics, Faculty of Mathematics and Physics, Charles University Ke Karlovu 5 121 16 Prague Czech Republic.
  • Stepánek P; Institute of Macromolecular Chemistry, Czech Academy of Sciences Heyrovského nám. 2 162 06 Prague Czech Republic.
  • Hanus J; Institute of Macromolecular Chemistry, Czech Academy of Sciences Heyrovského nám. 2 162 06 Prague Czech Republic.
  • Kousal J; Department of Macromolecular Physics, Faculty of Mathematics and Physics, Charles University V Holesovickách 2 180 00 Prague Czech Republic choukourov@kmf.troja.mff.cuni.cz.
  • Hanyková L; Department of Macromolecular Physics, Faculty of Mathematics and Physics, Charles University V Holesovickách 2 180 00 Prague Czech Republic choukourov@kmf.troja.mff.cuni.cz.
  • Krakovský I; Department of Macromolecular Physics, Faculty of Mathematics and Physics, Charles University V Holesovickách 2 180 00 Prague Czech Republic choukourov@kmf.troja.mff.cuni.cz.
  • Choukourov A; Department of Macromolecular Physics, Faculty of Mathematics and Physics, Charles University V Holesovickách 2 180 00 Prague Czech Republic choukourov@kmf.troja.mff.cuni.cz.
Nanoscale Adv ; 5(3): 955-969, 2023 Jan 31.
Article em En | MEDLINE | ID: mdl-36756512
ABSTRACT
Since the time of Faraday's experiments, the optical response of plasmonic nanofluids has been tailored by the shape, size, concentration, and material of nanoparticles (NPs), or by mixing different types of NPs. To date, water-based liquids have been the most extensively investigated host media, while polymers, such as poly(ethylene glycol) (PEG), have frequently been added to introduce repulsive steric interactions and protect NPs from agglomeration. Here, we introduce an inverse system of non-aqueous nanofluids, in which Ag and Cu NPs are dispersed in PEG (400 g mol-1), with no solvents or chemicals involved. Our single-step approach comprises the synthesis of metal NPs in the gas phase using sputtering-based gas aggregation cluster sources, gas flow transport of NPs, and their deposition (optionally simultaneous) on the PEG surface. Using computational fluid dynamics simulations, we show that NPs diffuse into PEG at an average velocity of the diffusion front of the order of µm s-1, which is sufficient for efficient loading of the entire polymer bulk. We synthesize yellow Ag/PEG, green Cu/PEG, and blue Ag/Cu/PEG nanofluids, in which the color is given by the position of the plasmon resonance. NPs are prone to partial agglomeration and sedimentation, with a slower kinetics for Cu. Density functional theory calculations combined with UV-vis data and zeta-potential measurements prove that the surface oxidation to Cu2O and stronger electrostatic repulsion are responsible for the higher stability of Cu NPs. Adopting the De Gennes formalism, we estimate that PEG molecules adsorb on the NP surface in mushroom coordination, with the thickness of the adsorbed layer L < 1.4 nm, grafting density σ < 0.20, and the average distance between the grafted chains D > 0.8 nm. Such values provide sufficient steric barriers to retard, but not completely prevent, agglomeration. Overall, our approach offers an excellent platform for fundamental research on non-aqueous nanofluids, with metal-polymer and metal-metal interactions unperturbed by the presence of solvents or chemical residues.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article