Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7992273 | Journal of Alloys and Compounds | 2018 | 21 Pages |
Abstract
The doping effects of C and Sn on the magnetic properties, structure, and microstructure of melt spun YCo5-xMx (Mâ¯=â¯C and Sn; xâ¯=â¯0-0.3) ribbons are studied. The permanent magnetic properties of Brâ¯=â¯5.7â¯kG, iHcâ¯=â¯1.8â¯kOe, and (BH)maxâ¯=â¯2.1 MGOe are obtained for the binary YCo5 ribbon, and they are largely increased to Brâ¯=â¯5.6-5.7â¯kG, iHcâ¯=â¯7.0-14.7â¯kOe, (BH)maxâ¯=â¯5.3-6.5 MGOe for C-doping ribbons and Brâ¯=â¯5.5-5.6â¯kG, iHcâ¯=â¯5.2-14.4â¯kOe, (BH)maxâ¯=â¯3.8-6.2 MGOe for Sn-doping ribbons, respectively. All studied ribbons mainly consist of hexagonal 1:5 phase with space group of P6/mmm. The entrance of C or Sn into the crystal structure of 1:5 phase modifies lattice constants and increases Curie temperature. The microstructure is effectively refined from 100 to 300â¯nm for binary ribbons to 10-50â¯nm for C-doping and 60-100â¯nm for Sn-doping ribbons, respectively. For high Sn-content YCo4.7Sn0.3 ribbon, Y5Sn3 precipitates with 10-20â¯nm in diameter form in the matrix, and these nonmagnetic phase may act as a pinning site to impede magnetization reversal and thus contribute to enhance coercivity. Magnetic property enhancement with C-doping is attributed to the formation of Y(Co, C)5 phase and microstructure refinement, while one with Sn-doping is related to the formation of Y(Co, Sn)5 phase, microstructure refinement, and the induction of nonmagnetic Y5Sn3 precipitates.
Keywords
Related Topics
Physical Sciences and Engineering
Materials Science
Metals and Alloys
Authors
H.W. Chang, W.C. Ou, Y.I. Lee, C.W. Shih, W.C. Chang, C.C. Yang, C.C. Shaw,