Chin. Phys. Lett.  2008, Vol. 25 Issue (3): 1068-1070    DOI:
Original Articles |
Microwave Magnetic Properties of Nd2Fe17N3-δ with Planar Anisotropy
LI Fa-Shen;WEN Fu-Sheng;ZHOU Dong;QIAO Liang;ZUO Wen-Liang
Institute of Applied Magnetics, Key Laboratory of Magnetism and Magnetic Materials of Ministry of Education, Lanzhou University, Lanzhou 730000
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LI Fa-Shen, WEN Fu-Sheng, ZHOU Dong et al  2008 Chin. Phys. Lett. 25 1068-1070
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Abstract Microwave magnetic properties are studied for rhombohedral structure
NdNd2Fe17N3-δ with planar magnetic anisotropy. Its resin composites show the permeability μ0'=4.15 at low frequency, the natural resonance frequency fr=1.71GHz and the resonance bandwidth 6.66GHz. The calculated static permeability of Nd2Fe17N3-δ reaches 133. The microwave magnetic properties are determined by the c-axis anisotropy field, basal plane anisotropy field and high saturation magnetization. Based on microwave measurement and theoretical fitting on complex permeability spectra, Nd2Fe17N3-δ may be a
promising microwave absorber with bandwidth wider than traditional hexaferrites materials in GHz ranges.
Keywords: 71.20.Eh      75.30.Gw      75.40.Gb     
Received: 03 December 2007      Published: 27 February 2008
PACS:  71.20.Eh (Rare earth metals and alloys)  
  75.30.Gw (Magnetic anisotropy)  
  75.40.Gb (Dynamic properties?)  
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https://cpl.iphy.ac.cn/       OR      https://cpl.iphy.ac.cn/Y2008/V25/I3/01068
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LI Fa-Shen
WEN Fu-Sheng
ZHOU Dong
QIAO Liang
ZUO Wen-Liang
[1] Naito Y and Suetaki K 1971 IEEE Trans. Microwave Theor.Technol. 19 65
[2] Musal H M and Hahn H T 1989 IEEE Trans. Magn. 25 3851
[3] Snoek J L 1948 Physica 14 207
[4] Zhang H W, Shi Y and Zhong Z Y 2002 Chin. Phys. Lett. 19 269
[5] Pullar R C, Appleton S G and Bhattacharya A K 1998 J. Magn.Magn. Mater. 186 326
[6] Zhang B S, Feng Y, Xiong J, Yang Y and Lu H X 2006 IEEE Trans.Magn. 42 1778
[7] Smit J and Wijn H P J 1959 Ferrites (Eindhoven: PhilipsTechnical Library) p 282
[8] Maeda T, Sugimoto S, Kagotani T, Tezuka N and Inomata K 2004 J. Magn. Magn. Mater. 281 195
[9] Otani Y, Hurley D P F, Sun H and Coey J M D 1991 J. Appl.Phys. 59 5584
[10] Katter M, Wecker J, Kuhrt J C, Schultz L, Kou X C andGr\"ossinger R 1992 J. Magn. Magn. Mater. 111 293
[11] Koyama K and Fujii H 2000 Phys. Rev. B 61 9475
[12] Li Y B, Zhang L G, Zhang S Y, Shen B G 2002 Chin. Phys. 11 174
[13] Kou X C, de Boer F R, Gr\"ossinger R, Wiesinger G, Suzuki H,Kitazawa H, Takamasu T and Kido G 1998 J. Magn. Magn. Mater. 177-181 1002
[14] Kittel C 1951 J. Phys. Radium 12 332
[15] Chikazumi S 1997 Physics of Ferromagnetism 2nd edn (Oxford:Oxford University) p 232
[16] Lin G Q, Li Z W, Chen L F, Wu Y P and Ong C K 2006 J. Magn.Magn. Mater. 305 291
[17] Lian L X, Deng L J, Han M and Tang W 2007 Appl. Phys. Lett. 101 09M520
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