Chin. Phys. Lett.  2005, Vol. 22 Issue (7): 1776-1779    DOI:
Original Articles |
Magnetic and Crystalline Microstructures of Fe--Pt--B Nanocomposite Ribbons
FANG Yi-Kun1;CHANG Cheng-Wu2;CHANG Wen-Cheng2;XIA Ai-Lin1;CHEN Qiang3;GE Hong-Liang3;HAN Bao-Shan1
1State Key Laboratory of Magnetism, Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100080 2Department of Physics, National Chung Cheng University, Ming-Hsiung, Chia-Yi 3Department of Applied Physics, China Jiliang University, Hangzhou 310018
Cite this article:   
FANG Yi-Kun, CHANG Cheng-Wu, CHANG Wen-Cheng et al  2005 Chin. Phys. Lett. 22 1776-1779
Download: PDF(525KB)  
Export: BibTeX | EndNote | Reference Manager | ProCite | RefWorks
Abstract We investigate magnetic and crystalline microstructures of melt-spun (Fe0.675Pt0.325)100-xBx (x=12, 14, 16, 18, 20) nanocomposite ribbons after optimal thermal treatment using a magnetic force microscope. The magnetic microstructures are characterized by darker spots adjacent to brighter ones in a sub-micro scale and in random distribution. It is found that the strength of the exchange coupling interaction between the crystals in the 10-100nm scale, implied by the maximum value (δM)max of the Henkel plot, could be roughly described by the ratio of the average width of the magnetic spots w to the average crystal size for the ribbons. Moreover, we find that the intrinsic coercivity jHc of the ribbons is sensitive to their crystal sizes, and the smaller D, the higher jHc. Finally, by using roughness analysis, the curve of the root mean square values (δФ)rms of the phase shift of the magnetic force images versus the boron content x is obtained, which is qualitatively consistent with that of the magnetization σ12kOe of the ribbons versus x.
Keywords: 75.50.Tt      75.30.Et      75.60.Ch      07.79.Pk     
Published: 01 July 2005
PACS:  75.50.Tt (Fine-particle systems; nanocrystalline materials)  
  75.30.Et (Exchange and superexchange interactions)  
  75.60.Ch (Domain walls and domain structure)  
  07.79.Pk (Magnetic force microscopes)  
TRENDMD:   
URL:  
https://cpl.iphy.ac.cn/       OR      https://cpl.iphy.ac.cn/Y2005/V22/I7/01776
Service
E-mail this article
E-mail Alert
RSS
Articles by authors
FANG Yi-Kun
CHANG Cheng-Wu
CHANG Wen-Cheng
XIA Ai-Lin
CHEN Qiang
GE Hong-Liang
HAN Bao-Shan
Related articles from Frontiers Journals
[1] ZHAO Kun-Yu,ZENG Hua-Rong**,SONG Hong-Zhang,HUI Sen-Xing,LI Guo-Rong,YIN Qing-Rui. The Observation of Martensite and Magnetic Domain Structures in Ni53Mn24Ga23 Shape Memory Alloys by Scanning Electron Acoustic Microscopy and Scanning Thermal Microscopy[J]. Chin. Phys. Lett., 2012, 29(5): 1776-1779
[2] ZHANG Jing-Jing,GAO Hong-Mei,YAN Yu,BAI Xue,WANG Wen-Quan,SU Feng,DU Xiao-Bo**. Processing YCo5 Permanent Magnetic Submicron Flakes by Surfactant-Assisted High-Energy Ball Milling[J]. Chin. Phys. Lett., 2012, 29(5): 1776-1779
[3] LI Ju-Fen, KUANG Xiao-Yu, ** . Analysis of Ground-State Zero-Field Splitting for Mn2+ in ZnNbOF56(H2O) and CoNbOF56(H2O)[J]. Chin. Phys. Lett., 2011, 28(6): 1776-1779
[4] LÜ, Dong-Li, XU Chen. Magnetization Switching in a Small Disk with Shape Anisotropy[J]. Chin. Phys. Lett., 2010, 27(9): 1776-1779
[5] WANG Fei, YAN Yu, YUAN Zhou, BAI Xue, DU Xiao-Bo, WANG Wen-Quan, SU Feng, JIN Han-Min. Permanent Magnetic Properties of Melt-Spun YCo5Cx Ribbons[J]. Chin. Phys. Lett., 2010, 27(6): 1776-1779
[6] GUO Jia-Jun, CHEN Lei, ZHAO Xu, FAN Su-Li, CHEN Wei. Effective Anisotropy in Magnetically Nd2Fe14B/α-Fe Nanocomposite[J]. Chin. Phys. Lett., 2010, 27(5): 1776-1779
[7] HAO Yan-Ming, FU Bin, ZHOU Yan, ZHAO Miao. Phase-Transition and Magnetic Moment of the Gd3+ Ion in the Gd2Fe17 Compound[J]. Chin. Phys. Lett., 2009, 26(7): 1776-1779
[8] GAO Ming-Liang, KUANG Xiao-Yu, ZHAO Ya-Ru, QI Lin, LI Yan-Fang. Correlation between Zero-Field Splitting and Site Distortions of Cr3+ Ions in NH4Cl:Cr3+ System: a Complete Energy Matrix Study[J]. Chin. Phys. Lett., 2009, 26(5): 1776-1779
[9] ZHANG Jing, DU Jun, BAI Xiao-Jun, YOU Biao, ZHANG Wei, HU An. Training Effect and Hysteretic Behaviour of Angular Dependence of Exchange Bias in Co/IrMn Bilayers[J]. Chin. Phys. Lett., 2009, 26(4): 1776-1779
[10] ZHAO Jing, WANG Yin-Jun, HAN Xiu-Feng. Dependence of Interlayer AF Coupling on Ferromagnetic Layer Thickness in [Pt/Co]5/Ru/[Co/Pt]5 Multilayers[J]. Chin. Phys. Lett., 2009, 26(3): 1776-1779
[11] M. Farahmandjou, S. A. Sebt, S. S. Parhizgar, P. Aberomand, M. Akhavan. Stability Investigation of Colloidal FePt Nanoparticle Systems by Spectrophotometer Analysis[J]. Chin. Phys. Lett., 2009, 26(2): 1776-1779
[12] HAO Yan-Ming, ZHANG Yan-Yan, JIANG Xin-Yuan, GAO Chun-Jing, WU Yan-Zhao. Thermal Expansion Anomaly and Spontaneous Magnetostriction of Y2Fe14Al3 Compound[J]. Chin. Phys. Lett., 2009, 26(2): 1776-1779
[13] FA Tao, XIANG Qing-Pei, YAO Shu-De. Fabrication of Co/CoO Exchange Bias System by Ion Implantation and Its Magnetic Properties[J]. Chin. Phys. Lett., 2009, 26(12): 1776-1779
[14] LIN Jing, SHI Zhong, ZHOU Shi-Ming, ZHANG Xia, XIA Yun-Jie. Exchange Bias in NiCo/FeMn Bilayers with Stripe Domains[J]. Chin. Phys. Lett., 2009, 26(10): 1776-1779
[15] SUN Hui-Yuan, HU Yun-Zhi, LIU Li-Hu. Influence of Temperature on Equilibrium Separation Between Vertical Bloch Lines in OHBs in Garnet Bubble Films[J]. Chin. Phys. Lett., 2009, 26(1): 1776-1779
Viewed
Full text


Abstract