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Study of Synthesis and Magnetic Properties of Ni and Ni-Cu Nano Metal Powders Prepared by the Pulsed Wire Evaporation(PWE) Method

전기폭발법에 의한 Ni 및 Ni-Cu 나노 금속 분말의 제조와 자기적 특성연구

  • 박중학 (한국원자력발전소, 원자력재료기술개발팀) ;
  • 엄영랑 (한국원자력발전소, 원자력재료기술개발팀) ;
  • 김경호 (한국원자력발전소, 원자력재료기술개발팀) ;
  • 김흥희 (한국원자력발전소, 원자력재료기술개발팀) ;
  • 이창규 (한국원자력발전소, 원자력재료기술개발팀)
  • Published : 2003.04.01

Abstract

Nanocrystalline materials of Ni and Ni-Cu alloy have been synthesized by the pulsed wire evaporation (PWE) method and these abnormal magnetic properties in the magnetic ordered state have been characterized using both VSM and SQUID in the range of high and low magnetic fields. Ni and Ni-Cu particles with an average size of 20 to 80 nm were found to influence magnetic hysterisis behavior and the results of powder neutron diffraction patterns and saturation magnetization curves are shown to indicate the absence of the NiO phase. The shifted hysterisis loop and irreversibility of the magnetization curve in the high field region were observed in the magnetic-ordered state of both Ni and Ni-Cu. The virgin magnetization curve for Ni slightly spillover on the limited hysterisis loop ($\pm$20kOe). This irreversibility in the high field of 50 kOe can be explained by non-col-linear behavior and the existence of the metastable states of the magnetization at the surface layer (or core) of the particle in the applied magnetic field. Immiscible alloy of Cu-Ni was also found to show irreversibility having two different magnetic phases.

Keywords

References

  1. Mater. Sci. Eng. v.R16 K.Lu
  2. J. Magn. Magn. Mater. v.200 R.H.Kodama https://doi.org/10.1016/S0304-8853(99)00347-9
  3. J. Appl. Phys. v.79 Q.Liu;Z.Xu https://doi.org/10.1063/1.361711
  4. Phys. Rev. Lett. v.27 J.M.D.Coey https://doi.org/10.1103/PhysRevLett.27.1140
  5. J. Appl. Phys. v.85 V.Franco;X.Batlle;A.Labarta https://doi.org/10.1063/1.369357
  6. Prog. Mater. Sci. v.44 M.E.McHenry;M.A.Willard;D.E.Laughlin
  7. J. Kor. Phys. Soc. v.37 Y.G.Yoo;S.C.Yu;W.T.Kim
  8. J. Magn. Magn.Mater. v.239 Y.D.Yao;Y.Y.Chen;S.F.Lee;W.C.Chang;H.L.Hu https://doi.org/10.1016/S0304-8853(01)00546-7
  9. Phsica B v.320 L.S.Dorneles;J.G.Borges;L.F.Schelp https://doi.org/10.1016/S0921-4526(02)00680-4
  10. Mater. Sci. Forum v.225-227 S.W.mahon;X.Song;M.A.Howson;B.J.Hickey;R.Cochrane https://doi.org/10.4028/www.scientific.net/MSF.225-227.157
  11. Mater. Sci. Forum v.225-227 A.Ye;Yermakov;M.A.Uimin;A.V.Shanuro;A.V.Zarubin;Y.V.Chechetkin;A.K.Shtolz;V.V.Kondratyev;G.N.Konygin;Y.P.Yelsukov;S.Enzo;P.P.Macri;R.Frattni;N.Cowlam https://doi.org/10.4028/www.scientific.net/MSF.225-227.147
  12. Phys. Rev. B v.63 R.N.Nogueira;H.M.Petrilli
  13. J. Mater. Nano. Mat. A.Ye.;Yermakov,M.A.;Uimin,A.A.;Mysik,A.;Yu, korobeinikov;A.V.Korolyov;N.V.Mushnikov;T.Goto;V.S.Gavoko;N.N.Schegoleva
  14. J. Appl. Phys. Y.R.Uhm;S.J.Kim;C.S.Kim;W.W.Kim;C.K.Rhee
  15. Materials Research Bulletin v.36 Q.Wang;H.Tang;J.Shi;G.Zou https://doi.org/10.1016/S0025-5408(01)00544-X
  16. Mater. Sci. Forum v.373-376 Y.R.Uhm;J.G.Lee;K.H.Jeong;C.S.Kim https://doi.org/10.1016/S0025-5408(01)00544-X
  17. Introduction to Magnetic Materials B.D.Cullity https://doi.org/10.4028/www.scientific.net/MSF.373-376.165
  18. B. D. Cullity: Introductoin to Magnetic Materials, (Anderson-Wesley, Reading, MA, 1972).

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