Structure and magnetic properties of Mn(Zn)Fe2−xRExO4 ferrite nano-powders synthesized by co-precipitation and refluxing method

The spinel-type MnZn ferrite nanopowders were synthesized by co-precipitation and refluxing method using δ-FeOOH as a precursor. The effects of processing parameters such as the pH value of co-precipitation solution and reflux time on the crystalline phase formation, microstructure and magnetic prop...

Full description

Saved in:
Bibliographic Details
Main Authors: Meng, Y. Y., Liu, Z. W., Dai, H. C., Yu, Hongyu, Zeng, D. C., Shukla, S., Ramanujan, Raju V.
Other Authors: School of Materials Science & Engineering
Format: Article
Language:English
Published: 2013
Online Access:https://hdl.handle.net/10356/97346
http://hdl.handle.net/10220/10489
Tags: Add Tag
No Tags, Be the first to tag this record!
Institution: Nanyang Technological University
Language: English
id sg-ntu-dr.10356-97346
record_format dspace
spelling sg-ntu-dr.10356-973462020-06-01T10:26:32Z Structure and magnetic properties of Mn(Zn)Fe2−xRExO4 ferrite nano-powders synthesized by co-precipitation and refluxing method Meng, Y. Y. Liu, Z. W. Dai, H. C. Yu, Hongyu Zeng, D. C. Shukla, S. Ramanujan, Raju V. School of Materials Science & Engineering The spinel-type MnZn ferrite nanopowders were synthesized by co-precipitation and refluxing method using δ-FeOOH as a precursor. The effects of processing parameters such as the pH value of co-precipitation solution and reflux time on the crystalline phase formation, microstructure and magnetic properties were systematically investigated. The results showed that, instead of spherical shape, Mn0.5Zn0.5Fe2O4 nanoparticles have square slice shape with sizes varying from < 10 nm to > 20 nm. The particle size can be controlled by the co-precipitation and reflux parameters. The products with saturation magnetization (Ms) of 46 emu/g were obtained when the pH value of co-precipitation solution and reflux time are 13.0 and 6 h, respectively. The effects of rare earth (RE) elements (La, Nd, Gd) doping on the structure and magnetic properties of Mn0.4Zn0.6Fe$2−xRExO4 nanoparticles were investigated. Due to the differences in available magnetic moment and ion's radius for La3+, Nd3+ and Gd3+, various magnetic properties were obtained in these three series of alloys. It was also found that the particle size, Ms and the coercive force (Hc) strongly depend on the RE concentration due to the preferred occupied positions of RE ions. 2013-06-19T07:01:52Z 2019-12-06T19:41:43Z 2013-06-19T07:01:52Z 2019-12-06T19:41:43Z 2012 2012 Journal Article Meng, Y. Y., Liu, Z. W., Dai, H. C., Yu, H., Zeng, D. C., Shukla, S., et al. (2012). Structure and magnetic properties of Mn(Zn)Fe2−xRExO4 ferrite nano-powders synthesized by co-precipitation and refluxing method. Powder Technology, 229, 270-275. 0032-5910 https://hdl.handle.net/10356/97346 http://hdl.handle.net/10220/10489 10.1016/j.powtec.2012.06.050 en Powder technology © 2012 Elsevier B.V.
institution Nanyang Technological University
building NTU Library
country Singapore
collection DR-NTU
language English
description The spinel-type MnZn ferrite nanopowders were synthesized by co-precipitation and refluxing method using δ-FeOOH as a precursor. The effects of processing parameters such as the pH value of co-precipitation solution and reflux time on the crystalline phase formation, microstructure and magnetic properties were systematically investigated. The results showed that, instead of spherical shape, Mn0.5Zn0.5Fe2O4 nanoparticles have square slice shape with sizes varying from < 10 nm to > 20 nm. The particle size can be controlled by the co-precipitation and reflux parameters. The products with saturation magnetization (Ms) of 46 emu/g were obtained when the pH value of co-precipitation solution and reflux time are 13.0 and 6 h, respectively. The effects of rare earth (RE) elements (La, Nd, Gd) doping on the structure and magnetic properties of Mn0.4Zn0.6Fe$2−xRExO4 nanoparticles were investigated. Due to the differences in available magnetic moment and ion's radius for La3+, Nd3+ and Gd3+, various magnetic properties were obtained in these three series of alloys. It was also found that the particle size, Ms and the coercive force (Hc) strongly depend on the RE concentration due to the preferred occupied positions of RE ions.
author2 School of Materials Science & Engineering
author_facet School of Materials Science & Engineering
Meng, Y. Y.
Liu, Z. W.
Dai, H. C.
Yu, Hongyu
Zeng, D. C.
Shukla, S.
Ramanujan, Raju V.
format Article
author Meng, Y. Y.
Liu, Z. W.
Dai, H. C.
Yu, Hongyu
Zeng, D. C.
Shukla, S.
Ramanujan, Raju V.
spellingShingle Meng, Y. Y.
Liu, Z. W.
Dai, H. C.
Yu, Hongyu
Zeng, D. C.
Shukla, S.
Ramanujan, Raju V.
Structure and magnetic properties of Mn(Zn)Fe2−xRExO4 ferrite nano-powders synthesized by co-precipitation and refluxing method
author_sort Meng, Y. Y.
title Structure and magnetic properties of Mn(Zn)Fe2−xRExO4 ferrite nano-powders synthesized by co-precipitation and refluxing method
title_short Structure and magnetic properties of Mn(Zn)Fe2−xRExO4 ferrite nano-powders synthesized by co-precipitation and refluxing method
title_full Structure and magnetic properties of Mn(Zn)Fe2−xRExO4 ferrite nano-powders synthesized by co-precipitation and refluxing method
title_fullStr Structure and magnetic properties of Mn(Zn)Fe2−xRExO4 ferrite nano-powders synthesized by co-precipitation and refluxing method
title_full_unstemmed Structure and magnetic properties of Mn(Zn)Fe2−xRExO4 ferrite nano-powders synthesized by co-precipitation and refluxing method
title_sort structure and magnetic properties of mn(zn)fe2−xrexo4 ferrite nano-powders synthesized by co-precipitation and refluxing method
publishDate 2013
url https://hdl.handle.net/10356/97346
http://hdl.handle.net/10220/10489
_version_ 1681058362312097792