Literature DB >> 27119383

Kinetic trapping through coalescence and the formation of patterned Ag-Cu nanoparticles.

Panagiotis Grammatikopoulos1, Joseph Kioseoglou, Antony Galea, Jerome Vernieres, Maria Benelmekki, Rosa E Diaz, Mukhles Sowwan.   

Abstract

In recent years, due to its inherent flexibility, magnetron-sputtering has been widely used to synthesise bi-metallic nanoparticles (NPs) via subsequent inert-gas cooling and gas-phase condensation of the sputtered atomic vapour. Utilising two separate sputter targets allows for good control over composition. Simultaneously, it involves fast kinetics and non-equilibrium processes, which can trap the nascent NPs into metastable configurations. In this study, we observed such configurations in immiscible, bi-metallic Ag-Cu NPs by scanning transmission electron microscopy (S/TEM) and electron energy-loss spectroscopy (EELS), and noticed a marked difference in the shape of NPs belonging to Ag- and Cu-rich samples. We explained the formation of Janus or Ag@Cu core/shell metastable structures on the grounds of in-flight mixed NP coalescence. We utilised molecular dynamics (MD) and Monte Carlo (MC) computer simulations to demonstrate that such configurations cannot occur as a result of nanoalloy segregation. Instead, sintering at relatively low temperatures can give rise to metastable structures, which eventually can be stabilised by subsequent quenching. Furthermore, we compared the heteroepitaxial diffusivities along various surfaces of both Ag and Cu NPs, and emphasised the differences between the sintering mechanisms of Ag- and Cu-rich NP compositions: small Cu NPs deform as coherent objects on large Ag NPs, whereas small Ag NPs dissolve into large Cu NPs, with their atoms diffusing along specific directions. Taking advantage of this observation, we propose controlled NP coalescence as a method to engineer mixed NPs of a unique, patterned core@partial-shell structure, which we refer to as a "glass-float" (ukidama) structure.

Entities:  

Year:  2016        PMID: 27119383     DOI: 10.1039/c5nr08256k

Source DB:  PubMed          Journal:  Nanoscale        ISSN: 2040-3364            Impact factor:   7.790


  8 in total

1.  Core@shell, Au@TiOx nanoparticles by gas phase synthesis.

Authors:  L Martínez; A Mayoral; M Espiñeira; E Roman; F J Palomares; Y Huttel
Journal:  Nanoscale       Date:  2017-05-18       Impact factor: 7.790

2.  Single-step generation of metal-plasma polymer multicore@shell nanoparticles from the gas phase.

Authors:  Pavel Solař; Oleksandr Polonskyi; Ansgar Olbricht; Alexander Hinz; Artem Shelemin; Ondřej Kylián; Andrei Choukourov; Franz Faupel; Hynek Biederman
Journal:  Sci Rep       Date:  2017-08-17       Impact factor: 4.379

Review 3.  Construction of Inorganic Bulks through Coalescence of Particle Precursors.

Authors:  Zhao Mu; Ruikang Tang; Zhaoming Liu
Journal:  Nanomaterials (Basel)       Date:  2021-01-18       Impact factor: 5.076

4.  Tuning the coalescence degree in the growth of Pt-Pd nanoalloys.

Authors:  Diana Nelli; Manuella Cerbelaud; Riccardo Ferrando; Chloé Minnai
Journal:  Nanoscale Adv       Date:  2020-12-09

5.  Continuous gas-phase synthesis of core-shell nanoparticles via surface segregation.

Authors:  Markus Snellman; Namsoon Eom; Martin Ek; Maria E Messing; Knut Deppert
Journal:  Nanoscale Adv       Date:  2021-04-14

6.  Role of core-shell energetics on anti-Mackay, chiral stacking in AgCu nanoalloys and thermally induced transition to chiral stacking.

Authors:  Manoj Settem; Anand K Kanjarla
Journal:  Sci Rep       Date:  2020-02-24       Impact factor: 4.379

7.  Surface Engineered Iron Oxide Nanoparticles Generated by Inert Gas Condensation for Biomedical Applications.

Authors:  Aver Hemben; Iva Chianella; Glenn John Thomas Leighton
Journal:  Bioengineering (Basel)       Date:  2021-03-15

8.  Molecular dynamics study on structural and atomic evolution between Au and Ni nanoparticles through coalescence.

Authors:  Bangquan Li; Jing Li; Xiaoqiang Su; Yimin Cui
Journal:  Sci Rep       Date:  2021-07-29       Impact factor: 4.379

  8 in total

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