Cited time in webofscience Cited time in scopus

Fine Control of Multiferroic Features of Nanoscale BiFeO3 Powders Synthesized by Microwave-Assisted Solid-State Reaction

Title
Fine Control of Multiferroic Features of Nanoscale BiFeO3 Powders Synthesized by Microwave-Assisted Solid-State Reaction
Author(s)
Bak, Jin-WonHam, Yeong-ShinShin, So-YoungPark, Kwon-JinYou, Chun-YeolJeong, Dae-YongCho, Nam-Hee
Issued Date
2023-09
Citation
Electronic Materials Letters, v.19, no.5, pp.495 - 501
Type
Article
Author Keywords
Hydrate type precursorsMicrowave-assisted heat-treatmentMultiferroicNanoscale BiFeO3Solid state reactionSpin canted cycle
Keywords
HYDROTHERMAL SYNTHESIS
ISSN
1738-8090
Abstract
Variations in the multiferroic properties of BiFeO3(BFO) powders were investigated with respect to the crystallite size and Gd-doping. Nanoscale BFO powders with an average particle size range of ~ 30–80nm were synthesized by a solid-state reaction using microwave-assisted heat treatment with Bi(NO3)3·5H20, FeC2O4·2H2O and Gd(NO3)3·6H2O as source precursors supplying Bi, Fe, and Gd, respectively. These were heat-treated at temperatures ranging from 200 to 700°C. The reaction led to the formation of crystallite powders with a particle size of a few tens of nanometers. It was confirmed that these samples had multiferroic properties at room temperature, and the value of Ms varied significantly from ferromagnetic to antiferromagnetic and vice versa with the size of the powders. In particular, ferromagnetic and ferroelectric features were observed when the size of the BFO powder was < ~ 30nm (half of the spin-canted cycle). As the crystallite size was reduced to that corresponding to half of the spin canted cycle, the value of Ms increased by 8.8 times from 1.41 to 12.46 memu/g. Compared to pure BFO, when Gd was doped, Ms values increased by ~ 60% and 240% in ~ 30nm and ~ 60nm particle-sized powders. Graphical Abstract: [Figure not available: see fulltext.]. © 2023, The Author(s) under exclusive licence to The Korean Institute of Metals and Materials.
URI
http://hdl.handle.net/20.500.11750/46498
DOI
10.1007/s13391-023-00412-9
Publisher
Korean Institute of Metals and Materials
Related Researcher
  • 유천열 You, Chun-Yeol
  • Research Interests Spintronics; Condensed Matter Physics; Magnetic Materials & Thin Films; Micromagnetic Simulations; Spin Nano-Devices
Files in This Item:

There are no files associated with this item.

Appears in Collections:
Department of Physics and Chemistry Spin Phenomena for Information Nano-devices(SPIN) Lab 1. Journal Articles

qrcode

  • twitter
  • facebook
  • mendeley

Items in Repository are protected by copyright, with all rights reserved, unless otherwise indicated.

BROWSE