Cold sintering of magnetic BaFe12O19 and other ferrites at 300 °C

被引:0
作者
Sarah Lowum
Richard D. Floyd
Yanglin Zhu
Zhiqiang Mao
Jon-Paul Maria
机构
[1] The Pennsylvania State University,Department of Materials Science and Engineering
[2] The Pennsylvania State University,Department of Physics
来源
Journal of Materials Science | 2021年 / 56卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Densifying ZnFe2O4 and BaFe12O19 at 300 °C to values greater than 90% of theoretical is demonstrated via hydroflux-assisted densification (HAD), a derivative of the cold sintering process employing non-aqueous, flux-based mass transport phases to facilitate particle consolidation. Previous attempts to cold sinter these materials with aqueous-based mass transport phases were not as successful with final densities < 90%. Attempts to densify NiFe2O4 and (Ni0.5Zn0.5)Fe2O4 only achieved densities around 80%, indicating an alternative transport phase may be needed to achieve high densities in Ni-containing materials. Magnetic hysteresis measurements of the low-temperature densified BaFe12O19 samples produced magnetic saturation values as high as 93 emu/g and coercive fields as high as 1789 Oe, which are comparable to values reported in the literature for this material produced via other processing techniques. Additional techniques are suggested to further optimize the magnetic properties of BaFe12O19 densified following the HAD approach.
引用
收藏
页码:11229 / 11236
页数:7
相关论文
共 143 条
[1]  
Guo H(2016)Cold sintering process: a novel technique for low-temperature ceramic processing of ferroelectrics J Am Ceram Soc 99 3489-3507
[2]  
Baker A(2020)Hydroflux-assisted densification: applying flux crystal growth techniques to cold sintering J Mater Sci 55 12760-143
[3]  
Guo J(2020)A review of cold sintering processes Adv Appl Ceram 119 115-20915
[4]  
Randall CA(2016)Hydrothermal-assisted cold sintering process: a new guidance for low-temperature ceramic sintering ACS Appl Mater Interfaces 8 20909-20574
[5]  
Lowum S(2018)Remarkably improved electrical conductivity of ZnO ceramics by cold sintering and post-heat-treatment Ceram Int 44 20570-2135
[6]  
Floyd R(2017)Cold sintering process of Li J Am Ceram Soc 100 2123-814
[7]  
Maria JP(2019)Al J Mater Sci 54 4522-8
[8]  
Grasso S(2009)Ge J Alloys Compd 486 809-135
[9]  
Biesuz M(2011)(PO4) J Appl Phys 109 5-904
[10]  
Zoli L(2020) solid electrolyte Open Ceram 2 100019-75