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Magnetic properties and magnetic hardening mechansim of Pt-Co-B alloysThe intrinsic coercivity is found to be maximized in the Pt42Co45B13 ternary alloy which is undercooled and rapidly solidified (quenched using a 70 m/s wheel speed after undercooling), and then annealed (800 C for 2400 min). The same alloy, processed at slower cooling rates and annealed in the same way, has a much larger scale microstructure and a much lower resulting magnetic coercivity. The microstructure which would optimize the coercitvity of this coercivity of this ternary alloy is a completely ordered L1(sub zero) Pt-Co matrix with a submicron magnetic single-domion Co-boride precipitate. The L1(sub zero) phase is highly anistropic magnetically while the Co-boride precipate is somewhat less so. Annealing treatments designed to produced single-domain Co-boride precipitates enhance the coercivity. This suggests that the refined microstructures is responsible for the high coercivities found in the rapidly solidified and annealed alloy. The magnetic domain wall thickness for a Co-boride precipitate is determined from both experimental observation and theoretical calculation in order to evaluate its influence on the coercivity of the alloy. The effects of the pinning of domain walls and the barrier to the nucleation of reverse domains on the coercivity are discussed. Both microstrucutral analysis and theoretical calculation indicate that the high coercivities in the Pt42Co45B13 alloy are due to the difficult nucleation of reverse magnetic domains.
Document ID
19950060384
Acquisition Source
Legacy CDMS
Document Type
Reprint (Version printed in journal)
External Source(s)
Authors
Qiu, Ning
(Vanderbilt Univ. Nashville, TN, United States)
Flanagan, F.
(Vanderbilt Univ. Nashville, TN, United States)
Wittig, James E.
(Vanderbilt Univ. Nashville, TN, United States)
Date Acquired
August 17, 2013
Publication Date
August 1, 1994
Publication Information
Publication: Journal of Applied Physics
Volume: 76
Issue: 3
ISSN: 0021-8979
Subject Category
Solid-State Physics
Accession Number
95A91983
Distribution Limits
Public
Copyright
Other

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