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Laser induced structure changes in amorphous Co70Fe3Mn3:5Mo1:5B11Si11 alloy have been studied by means of X-ray diffraction and magnetic properties measurements. Both three types of structural relaxations and a starting stage of crystallization process are considered as main characteristics of structure transformation upon laser treatment. Results of investigation of this amorphous alloy at different parameters of laser irradiation have shown that this alloy becomes partly crystalline after irradiation with laser pulse fluence of about 1.8 J/mm2 and pulse duration t = 2 × 10-5 sec. Increasing of laser pulse fluence above 2.0 J/mm2 leads to the destruction of ribbon, due to intensive evaporation.
Wydawca
Czasopismo
Rocznik
Tom
Strony
28--33
Opis fizyczny
Bibliogr. 26 poz., wykr.
Twórcy
autor
- Ivan Franko Lviv National University, Physics of Metals Department, Kyrylo and Mephodyj str., 8, Lviv 79005 Ukraine
autor
- Ivan Franko Lviv National University, Physics of Metals Department, Kyrylo and Mephodyj str., 8, Lviv 79005 Ukraine
Bibliografia
- [1] JALEH B., VALIEGHBAL M., HABIBI S., TORKAMANY M.J., J. Supercond. Nov. Magn., 25 (2012), 2665.
- [2] ZELENAKOVA A., KOLLAR P., VERTESY Z., KUZMINSKI M., RAMIN D., RIEHEMANN W., Acta Phys. Slovaca, 50 (4), (2000), 501.
- [3] GIRZHON V.V., SMOLYAKOV A.V., BABICH N. G., SEMEN’KO M.P., Phys. Met. Metallogr.+, 108 (2) (2009), 125.
- [4] LYASOTSKYI I.V., DYAKONOVA N.B., DYAKONOV D.L., KRAPOSHIN V.S., JPCS, 98 (2008), 120.
- [5] LANOTTE L., IANNOTTI V., J. Appl. Phys., 78 (5) (1995), 3531.
- [6] FEDOROV V.A., JAKOVLEV A.V., KAPUSTIN A.N., VASILEVA I.V., Rev. Adv. Mater. Sci., 20 (2009), 179.
- [7] KRAVETS V.G., PORTIER X., PETFORD-LONG A.K., J. Mater. Sci., 37(13) (2002), 2773.
- [8] GIRZHON V.V., RUDNEV YU.V., ANPILOGOV D.I. AND SMOLYAKOV A.V., Scripta Mater., 39 (6) (1998), 815.
- [9] YOSHIO WASEDA, The structure of non-crystalline materials. Liquids and amorphous solids, McGraw-Hill International Book Co., New York, 1980.
- [10] SESTAK J., MARES J., HUBIK P. (Eds.), Glassy, Amorphous and Nano-Crystalline Materials: Thermal Physics, Analysis, Structure and Properties, Springer Science+Business Media B.V., New York, 2011.
- [11] LESZ S., NOWOSIELSKI R., ZAJDEL A., KOSTRUBIEC B. AND STOCLOSA Z., Arch. Mater. Sci. Eng.,, 28 (2) (2007), 91.
- [12] MUDRY S., KOTUR B., BEDNARSKA L., KULYK YU., J. Alloy. Compd, 367 (2004), 274.
- [13] SUZUKI K., FUJIMORI H., HASHIMOTO K. (Eds.), Amorphous Metals. Metallurgy, Moscow, 1987 (in Russian).
- [14] EGAMI T., Mater. Res. Bull., 13 (1978), 557.
- [15] MASUMOTO T., MADDIN R., Mater. Sci. Eng., 19 (1975), 1.
- [16] CHEN H. S., Rep. Prog. Phys., 43 (1980), 432.
- [17] GLEZER A.M., Ros. Khim. Zh. (Zh. Ross. Khim. Ob-va im. D.I. Mendeleeva) XLVI (5) (2002), 57, (in Russian).
- [18] ANISHCHIK V.M., BORISENKO V.E., ZHDANOK S. A., TOLOCHKO N. K., FEDOSYUK V. M. (Eds.),Nanomaterials and nanotechnologies. Izd. Center BSU, Minsk, 2008, (in Russian).
- [19] NOWOSIELSKI R., ZAJDEL A., LESZ S., KOSTRUBIEC B., STOKLOSA Z., JAMME, 17 (1 – 2) (2006), 121 –124.
- [20] LESZ S., NOWOSIELSKI R., KOSTRUBIEC B., STOKLOSA Z., JAMME, 16 (1 – 2) (2006), 35.
- [21] KONIECZNY J., BORISJUK A., PASHECHKO M., DOBRZANSKI L.A., JAMME, 42 (1 – 2), (2010), 42.
- [22] VITROPERM 500 F – VITROVAC 6030 F. Tapewound cores for power transformers in SMPS, Vacuumschmelze GmbH & Co. Hanau, Germany
- [23] JAKUBCZYK E., KOLANO R., Visnyk Lviv Univ. Ser.Physic., 33 (2000), 233.
- [24] HE SHU-LI, HE KAI-YUAN, WANG ZHI, CHENG LIZH, FU YU-JU., Chinese Phys. Lett., 14 (6) (1997), 464.
- [25] LACHOWICZ H.K., POPLAWSKI F., ZUBEREK R., KUTMIDSKI M., QLAWSKA-WANIEWSKA A., DYNOWSKA E., IEEE Magn., 35 (5) (1999), 3877.
- [26] GRIGOR’EV I.S., MEILIKHOV E.Z. (Eds.), Fizicheskie velichiny: Spravochnik (Handbook of Physical Quantities), Energoatomizdat, Moscow, 1991.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-0963cbe2-5082-4ecc-9f13-1aece109edae