CORC  > 兰州理工大学  > 兰州理工大学  > 理学院
Study and Control on the Morphology and Magneto-Optical Properties of BiFeO3 Multiferroic Materials
Li, Zengpeng1,2; Dai, Jianfeng3; Cheng, Chen3; Feng, Wei3
刊名Cailiao Daobao/Materials Reports
2022-06-10
卷号36期号:11
关键词Azo dyes Bismuth compounds Degradation Electrospinning Ferrite High resolution transmission electron microscopy Iron compounds Magnetic moments Magnetization Nanofibers Nanoparticles Optical properties Photocatalytic activity Scanning electron microscopy X ray photoelectron spectroscopy Bismuth ferrites Electrospinning method Ferroelectric property Ferromagnetic properties Hydrothermal methods Magnetooptical properties Morphology and size Multiferroic materials Photocatalytic activities Surface area
ISSN号1005-023X
DOI10.11896/cldb.20120114
英文摘要Bismuth ferrites (BiFeO3) are a surprising class of multiferroic materials owning to exhibit both ferroelectric and ferromagnetic properties at room temperature, which is widely used in applications including microelectronics, spintronics and photocatalytic activity. The pure BiFeO3 nanofiber and nanoparticle prepared by electrospinning and hydrothermal method respectively were reported for clarifying the influence of various morphologies and size on magneto-optical properties. The X-ray diffractometer, X-ray photoelectron spectroscopy, scanning electron microscopy, transmission electron microscopy, physical property measurement system, UV-Vis spectrophotometer and multi-function temperature control photochemical reaction instrument were used to characterize the physical and chemical properties of samples with different morphologies and sizes. Compared with the BiFeO3 nanoparticle, the coexistence of lower crystal size (82-98 nm) and larger specific surface ratio in BFO nanofiber had potential ability to improve the value of remanent magnetization (0.042 emu/g), which lead to destroy the long-period spin-modulated spiral antiferromagnetic order and enhanced the contribution of total magnetic moment. Meanwhile, it has been revealed that the non-compensated surface spin effect and exchange coupling effect were raised due to the lower nano-scale. On the one hand, it was efficiently inhibited the recombination rate of photogenerated e-/h+ pairs and enhanced the charge separation efficiency owning to those of BFO nanofiber possessed smaller bandgap (1.98 eV), larger methyl orange (MO) degradation rate (63%) and higher decomposition reaction constant (k=0.011 61 min-1). On the other hand, the enhancement of photocatalytic activity of BFO nanofiber with larger spectific surface area can be attributed to the increase of hydroxyl, which could be accelerate to the diffusion of hydroxyl radical, and making the dye molecules more accessibly turn into the catalyst surface area. © 2022, Materials Review Magazine. All right reserved.
语种中文
出版者Cailiao Daobaoshe/ Materials Review
内容类型期刊论文
源URL[http://ir.lut.edu.cn/handle/2XXMBERH/159071]  
专题理学院
土木工程学院
作者单位1.State Key Laborotary of Advanced Processing and Recycling of Non-ferrous Metals, School of Materials Science and Engineering, Lanzhou University of Technology, Lanzhou; 730050, China;
2.Key Laborotary of Solar Power System Engineering, Jiuquan Vocational and Technical College, Jiuquan; 735000, China;
3.School of Science, Lanzhou University of Technology, Lanzhou; 730050, China
推荐引用方式
GB/T 7714
Li, Zengpeng,Dai, Jianfeng,Cheng, Chen,et al. Study and Control on the Morphology and Magneto-Optical Properties of BiFeO3 Multiferroic Materials[J]. Cailiao Daobao/Materials Reports,2022,36(11).
APA Li, Zengpeng,Dai, Jianfeng,Cheng, Chen,&Feng, Wei.(2022).Study and Control on the Morphology and Magneto-Optical Properties of BiFeO3 Multiferroic Materials.Cailiao Daobao/Materials Reports,36(11).
MLA Li, Zengpeng,et al."Study and Control on the Morphology and Magneto-Optical Properties of BiFeO3 Multiferroic Materials".Cailiao Daobao/Materials Reports 36.11(2022).
个性服务
查看访问统计
相关权益政策
暂无数据
收藏/分享
所有评论 (0)
暂无评论
 

除非特别说明,本系统中所有内容都受版权保护,并保留所有权利。


©版权所有 ©2017 CSpace - Powered by CSpace