Issue 3, 2015

Growth mechanism and magnetic properties of monodisperse L10-Co(Fe)Pt@C core–shell nanoparticles by one-step solid-phase synthesis

Abstract

In this report, we present a novel one-step solid-phase reaction method for the synthesis of L10-CoPt@C core–shell nanoparticles (NPs) using organic metal precursors without surfactants. The obtained CoPt@C NPs have a good face-centered tetragonal single crystal structure and regular shape. The mean size of CoPt is 14 nm with a uniform carbon shell. The evolution of the core–shell structure during the synthesizing process is investigated in detail. Firstly organic metal precursors are decomposed, followed by the formation of grains/clusters in a metal–carbon intermediate state. Then the metal–carbon small grains/clusters agglomerate and recrystallize into single crystal metal alloy NPs covered with a carbon layer. The carbon shell is effective in preventing the coalescence of L10-CoPt NPs during high temperature sintering. The prepared L10-FePt nanoparticles have a high coercivity of up to 12.2 kOe at room temperature. This one-step solid-state synthesizing method could also be employed for the preparation of other types of nanostructures with high crystallinity, monodispersity and chemically ordered phase.

Graphical abstract: Growth mechanism and magnetic properties of monodisperse L10-Co(Fe)Pt@C core–shell nanoparticles by one-step solid-phase synthesis

Supplementary files

Article information

Article type
Paper
Submitted
28 Aug 2014
Accepted
19 Nov 2014
First published
21 Nov 2014

Nanoscale, 2015,7, 975-980

Growth mechanism and magnetic properties of monodisperse L10-Co(Fe)Pt@C core–shell nanoparticles by one-step solid-phase synthesis

B. Bian, J. He, J. Du, W. Xia, J. Zhang, J. P. Liu, W. Li, C. Hu and A. Yan, Nanoscale, 2015, 7, 975 DOI: 10.1039/C4NR04986A

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