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Synthesis and characterization of carbon-coated Cu-Ni alloy nanoparticles and their application in conductive films

  • Gyoung Ja Lee
  • , Jun Hyeok Lee
  • , Dongju Lee
  • , Kwi Il Park
  • , Chang Kyu Jeong
  • , Jin Ju Park
  • , Min Ku Lee*
  • *Corresponding author for this work
  • Korea Atomic Energy Research Institute
  • Korea Evaluation Institute of Industrial Technology
  • Chungbuk National University
  • Kyungpook National University

Research output: Contribution to journalJournal articlepeer-review

Abstract

In this paper, an efficient fabrication route is presented for carbon-coated Cu-Ni alloy nanoparticles (Cu1-xNix@C NPs; x = 0–1.0) by means of electrical wire explosion under methane gas. The Cu-Ni binary system, which is considered to be an ideal isomorphous system, has carbon growth controllable by tuning the atomic fraction of Cu and Ni with largely different carbon solubility. As the Ni content increases, the average particle size and carbon layer thickness increase. It is notable that the carbon layer is very thin, <2 nm, regardless of the core size for pure Cu@C NPs. On the other hand, as the Ni content increases, the particle size dependence of the carbon-layer thickness becomes significant and the carbon layer is obviously tunable from amorphous to crystalline form. The high-temperature oxidation stability of Cu1-xNix@C NPs is enhanced with increasing Ni content due to the higher thermal stability of carbon layers with greater thickness and high crystallinity. The conductive films were prepared using screen-printing of paste containing Cu1-xNix@C NPs and the electrical resistivity was mapped according to the Ni content. The temperature stability of the sheet resistance and activation energy of oxidation for the conductive films increase with increasing Ni content.

Original languageEnglish
Article number150672
JournalApplied Surface Science
Volume566
DOIs
StatePublished - 2021.11.15

Keywords

  • Carbon coating
  • Conductive film
  • Core-shell structure
  • Cu-Ni alloy nanoparticles
  • Temperature stability

Quacquarelli Symonds(QS) Subject Topics

  • Materials Science
  • Physics & Astronomy

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