Ferrite-based soft and hard magnetic structures by extrusion free-forming

被引:70
作者
Peng, Erwin [1 ]
Wei, Xiangxia [1 ]
Herng, Tun Seng [1 ]
Garbe, Ulf [2 ]
Yu, Dehong [2 ]
Ding, Jun [1 ]
机构
[1] Natl Univ Singapore, Dept Mat Sci & Engn, Fac Engn, 9 Engn Dr 1, Singapore 117576, Singapore
[2] Australian Nucl Sci Technol Org, Bragg Inst, New Illawarra Rd, Lucas Heights, NSW 2234, Australia
关键词
NI-ZN FERRITES; CERAMIC COMPONENTS; BARIUM HEXAFERRITE; ELECTROCERAMICS; MICROSTRUCTURE; FABRICATION; TECHNOLOGY; DESIGN; ENERGY; OXIDE;
D O I
10.1039/c7ra03251j
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Functional ceramic materials, especially those with unique magnetic properties, with complex geometries have become increasingly important for various key technologies in industry. Herein, ferrite-based soft (NiFe2O4) and hard (BaFe12O19) bulk magnetic structures with three-dimensional morphologies are successfully fabricated from inexpensive metal oxide powder (NiO/Fe2O3 and BaCO3/Fe2O3) precursors through a simple extrusion free-forming (EFF) technique coupled with a high temperature solid-state reaction process. Dense polycrystalline microstructures with negligible porosity are observed for samples sintered above 1200 degrees C and highly crystalline NiFe2O4 and BaFe12O19 phases are successfully formed. The printed structures also exhibit either soft or hard magnetic material behavior with (i) saturation magnetization values up to approximately 86% and 95% of the NiFe2O4 and BaFe12O19 theoretical bulk magnetization values, respectively, and (ii) high densities up to similar to 93% of their respective theoretical bulk density. Bulk magnetic structures with unique geometries (e.g. mesh, gear, ring and cylinder) are successfully fabricated. The EFF technique demonstrated in this work can be readily extended to other functional ferrite or titanate ceramic materials simply by changing the metal oxide powder precursors.
引用
收藏
页码:27128 / 27138
页数:11
相关论文
共 46 条
[1]  
Aleksander I. G., 1987, PHYS-USP, V30, P659
[2]   Ceramic components manufacturing by selective laser sintering [J].
Bertrand, Ph. ;
Bayle, F. ;
Combe, C. ;
Goeuriot, P. ;
Smurov, I. .
APPLIED SURFACE SCIENCE, 2007, 254 (04) :989-992
[3]   The perovskite structure - a review of its role in ceramic science and technology [J].
Bhalla, AS ;
Guo, RY ;
Roy, R .
MATERIALS RESEARCH INNOVATIONS, 2000, 4 (01) :3-26
[4]  
BYE GC, 1971, J APPL CHEM BIOTECHN, V21, P319
[5]   STUDY OF SOLID-STATE REACTIONS IN NIO/FE2O3 SYSTEM [J].
CEROVIC, D ;
MOMCILOVIC, I ;
KISS, SJ .
JOURNAL OF MATERIALS SCIENCE, 1969, 4 (02) :174-+
[6]   3D printing of piezoelectric element for energy focusing and ultrasonic sensing [J].
Chen, Zeyu ;
Song, Xuan ;
Lei, Liwen ;
Chen, Xiaoyang ;
Fei, Chunlong ;
Chiu, Chi Tat ;
Qian, Xuejun ;
Ma, Teng ;
Yang, Yang ;
Shung, Kirk ;
Chen, Yong ;
Zhou, Qifa .
NANO ENERGY, 2016, 27 :78-86
[7]   Synthesis, microstructure and magnetic properties of Ni-Zn ferrites [J].
Costa, ACFM ;
Tortella, E ;
Morelli, MR ;
Kiminami, RHGA .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2003, 256 (1-3) :174-182
[8]   Design of electroceramics for solid oxides fuel cell applications: Playing with ceria [J].
Esposito, Vincenzo ;
Traversa, Enrico .
JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 2008, 91 (04) :1037-1051
[9]   Extrusion-based 3D printing of ceramic components [J].
Faes, M. ;
Valkenaers, H. ;
Vogeler, F. ;
Vleugels, J. ;
Ferraris, E. .
3RD CIRP GLOBAL WEB CONFERENCE - PRODUCTION ENGINEERING RESEARCH ADVANCEMENT BEYOND STATE OF THE ART (CIRPE2014), 2015, 28 :76-81
[10]   Lithography-Based Additive Manufacturing of Cellular Ceramic Structures [J].
Felzmann, Ruth ;
Gruber, Simon ;
Mitteramskogler, Gerald ;
Tesavibul, Passakorn ;
Boccaccini, Aldo R. ;
Liska, Robert ;
Stampfl, Juergen .
ADVANCED ENGINEERING MATERIALS, 2012, 14 (12) :1052-1058