Atomic ordering in nano-layered FePt: Multiscale Monte Carlo simulation

被引:3
作者
Kozubski, Rafal [1 ]
Kozlowski, Miroslaw [1 ]
Wrobel, Jan [2 ]
Wejrzanowski, Tomasz [2 ]
Kurzydlowski, Krzysztof J. [2 ]
Goyhenex, Christine [3 ]
Pierron-Bohnes, Veronique [3 ]
Rennhofer, Marcus [4 ]
Malinov, Savko [5 ]
机构
[1] Jagiellonian Univ, Interdisciplinary Ctr Mat Modelling, M Smoluchowski Inst Phys, Krakow, Poland
[2] Warsaw Univ Technol, Interdisciplinary Ctr Mat Modelling, Fac Mat Sci & Engn, Warsaw, Poland
[3] CNRS ULP, Inst Phys & Chim Mat Strasbourg, Strasbourg, France
[4] Univ Vienna, Fac Phys, Vienna, Austria
[5] Queens Univ Belfast, Sch Mech & Aerosp Engn, Belfast, Antrim, North Ireland
关键词
L1(o)-ordered FePt intermetallic; Multiscale Monte Carlo simulations; Atomic ordering; Antiphase domains; Microstructure; NANOPARTICLES; EQUILIBRIUM; FILMS;
D O I
10.1016/j.commatsci.2010.01.046
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Nano- and meso-scale simulation of chemical ordering kinetics in nano-layered L1(0)-AB binary intermetallics was performed. In the nano- (atomistic) scale Monte Carlo (MC) technique with vacancy mechanism of atomic migration implemented with diverse models for the system energetics was used. The meso-scale microstructure evolution was, in turn, simulated by means of a MC procedure applied to a system built of meso-scale voxels ordered in particular L1(0) variants. The voxels were free to change the L1(0) variant and interacted with antiphase-boundary energies evaluated within the nano-scale simulations. The study addressed FePt thin layers considered as a material for ultra-high-density magnetic storage media and revealed metastability of the L1(0) c-variant superstructure with monoatomic planes parallel to the (001)-oriented layer surface and off-plane easy magnetization. The layers, originally perfectly ordered in the c-variant, showed discontinuous precipitation of a- and b-L1(0)-variant domains running in parallel with homogeneous disordering (i.e. generation of antisite defects). The domains nucleated heterogeneously on the free monoatomic Fe surface of the layer, grew inwards its volume and relaxed towards an equilibrium microstructure of the system. Two "atomistic-scale" processes: (i) homogeneous disordering and (ii) nucleation of the a- and b-L1(0)-variant domains showed characteristic time scales. The same was observed for the meso-scale process of domain microstructure relaxation. The above complex structural evolution modeled by means of the multi-scale MC simulations has recently been observed experimentally in epitaxially deposited thin films of FePt. (C) 2010 Elsevier B.V. All rights reserved.
引用
收藏
页码:S80 / S84
页数:5
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