Iron self-diffusion in nanocrystalline FeZr thin films

被引:9
|
作者
Gupta, A
Gupta, M
Pietsch, U
Ayachit, S
Rajagopalanl, S
Balamurgan, AK
Tyagi, AK
机构
[1] Interuniv Consortium, DAE Facil, Indore 452017, India
[2] Neutron Scattering Lab, CH-5232 Villigen, Switzerland
[3] Swiss Fed Inst Technol, Paul Scherrer Inst, CH-5232 Villigen, Switzerland
[4] Univ Potsdam, Inst Phys, D-14469 Potsdam, Germany
[5] Indira Gandhi Ctr Atom Res, MSD, Kalpakkam 603102, Tamil Nadu, India
关键词
D O I
10.1016/j.jnoncrysol.2004.07.051
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Thin films of amorphous Fe85Zr15 alloy were deposited by ion-beam sputtering of a composite target. Analogous to the melt-spun amorphous alloys of similar composition, the crystallization of the amorphous film occurs in two steps, however, with a substantially reduced thermal stability. After completion of the first crystallization step which starts at 473 K, the microstructure consists of 12 nm nanocrystals of bcc-Fe embedded in a grain boundary region of the remaining amorphous phase. At 673 K, the remaining amorphous phase transforms into the Fe2Zr alloy. The self-diffusion measurements of iron in the nanocrystalline state and in the parent amorphous state has been carried out using secondary ion mass spectroscopy (SIMS) depth profiling and neutron reflectivity techniques. In contrast to the case of finemet Fe73.5Si13.5B9Nb3Cu1 alloy, where a significant enhancement of diffusivity takes place in the nanocrystalline state, in the present case the diffusivity in the nanocrystalline state is similar to that in the parent amorphous state. It is suggested that in this system the atomic diffusion occurs mainly via the grain boundary regions. The calculated values of the pre-exponential factor and the activation energy for the diffusion are D-0 = 1 x 10(-14+/-1) m(2)/s and E = (0.7 +/- 0.1) eV respectively. (C) 2004 Published by Elsevier B.V.
引用
收藏
页码:39 / 47
页数:9
相关论文
共 50 条
  • [41] Radiation-enhanced self-diffusion in α-iron
    Schüle, Wolfgang
    Zeitschrift fuer Metallkunde/Materials Research and Advanced Techniques, 2000, 91 (09): : 728 - 733
  • [42] Parameters of the vacancy formation and self-diffusion in the iron
    Magomedov, Mahach N.
    JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS, 2023, 172
  • [43] SELF-DIFFUSION IN FERROMAGNETIC ALPHA-IRON
    HETTICH, G
    MEHRER, H
    MAIER, K
    SCRIPTA METALLURGICA, 1977, 11 (09): : 795 - 802
  • [44] MOSSBAUER STUDIES ON SELF-DIFFUSION IN PURE IRON
    HEIMING, A
    STEINMETZ, KH
    VOGL, G
    YOSHIDA, Y
    JOURNAL OF PHYSICS F-METAL PHYSICS, 1988, 18 (07): : 1491 - 1503
  • [45] Iron self-diffusion in chemically homogeneous multilayers
    Gupta, M
    Gupta, A
    Chakravarty, S
    Gutberlet, T
    DIFFUSION IN MATERIALS: DIMAT 2004, PTS 1 AND 2, 2005, 237-240 : 548 - 553
  • [46] Self-diffusion processes in stoichiometric iron mononitride
    Niti
    Tayal, Akhil
    Pandey, Nidhi
    Reddy, V. R.
    Gupta, Ajay
    Gupta, Mukul
    JOURNAL OF APPLIED PHYSICS, 2021, 129 (24)
  • [47] SELF-DIFFUSION IN - ALPHA AND GAMMA-IRON
    BIRCHENALL, CE
    MEHL, RF
    TRANSACTIONS OF THE AMERICAN INSTITUTE OF MINING AND METALLURGICAL ENGINEERS, 1950, 188 (01): : 144 - 149
  • [48] Radiation-enhanced self-diffusion in α-iron
    Schüle, W
    ZEITSCHRIFT FUR METALLKUNDE, 2000, 91 (09): : 728 - 733
  • [49] SELF-DIFFUSION OF IRON AND SULFUR IN FERROUS SULFIDE
    CONDIT, RH
    HOBBINS, RR
    BIRCHENALL, CE
    OXIDATION OF METALS, 1974, 8 (06): : 409 - 455
  • [50] Self-diffusion and magnetic properties in explosion densified nanocrystalline Fe
    Tanimoto, H
    Pasquini, L
    Prümmer, R
    Kronmüller, H
    Schaefer, HE
    SCRIPTA MATERIALIA, 2000, 42 (10) : 961 - 966