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Effect of Fe Content on the Microstructure, Electrical Resistivity, and Nanoindentation Behavior of Zr60Cu40-xFex Phase-Separated Metallic Glasses |
SUN Xiaojun1,2, HE Jie1,2( ), CHEN Bin1,2, ZHAO Jiuzhou1,2, JIANG Hongxiang1, ZHANG Lili1, HAO Hongri1 |
1.Shi -Changxu Innovation Center for Advanced Materials, Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China 2.School of Materials Science and Engineering, University of Science and Technology of China, Shenyang 110016, China |
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Cite this article:
SUN Xiaojun, HE Jie, CHEN Bin, ZHAO Jiuzhou, JIANG Hongxiang, ZHANG Lili, HAO Hongri. Effect of Fe Content on the Microstructure, Electrical Resistivity, and Nanoindentation Behavior of Zr60Cu40-xFex Phase-Separated Metallic Glasses. Acta Metall Sin, 2021, 57(5): 675-683.
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Abstract Liquid-liquid phase separation was used to design phase-separated metallic glasses with special properties. In this work, Zr60Cu40-xFex phase-separated metallic glasses were designed by partial substitution of Cu by Fe in Zr60Cu40 metallic glass. The liquid-liquid phase separation behavior of Zr60Cu40-xFex alloy was investigated. The results show that the miscibility gap of the binary Cu-Fe system can be extended into the Zr60Cu40-xFex system and that liquid-liquid phase separation into Cu-rich and Fe-rich liquids occurred during rapid cooling. On the basis of the behavior of liquid-liquid phase separation of the Zr60Cu40-xFex system, the effect of partial substitution of Cu by Fe on the microstructure and phase formation of the Zr60Cu40-xFex alloys was investigated. The microstructure evolution and the competitive mechanism of phase formation in the as-quenched Zr60Cu40-xFex alloy were discussed. For the Zr60Cu20Fe20 alloy, liquid-liquid phase separation into Cu-rich and Fe-rich liquids and then liquid-glass transition occurred during rapid cooling and resulted in a heterogeneous structure with glassy Fe-rich matrix embedded with glassy Cu-rich nanoparticles. Considering this structure, the electrical properties and nanoindentation behavior of the as-quenched Zr60Cu20Fe20 alloy were examined. The abnormal change in electrical resistivity during crystallization and the effect of nanoscale phase separation on the shear transformation zone of the Zr60Cu20Fe20 alloy were analyzed.
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Received: 30 April 2020
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Fund: National Natural Science Foundation of China(51774264);Natural Science Foundation of Liaoning Province(2019-MS-332) |
About author: HE Jie, professor, Tel: (024)83973120, E-mail: jiehe@imr.ac.cn
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1 |
Ratke L, Diefenbach S. Liquid immiscible alloys [J]. Mater. Sci. Eng., 1995, R15: 263
|
2 |
He J, Kaban I, Mattern N, et al. Local microstructure evolution at shear bands in metallic glasses with nanoscale phase separation [J]. Sci. Rep., 2016, 6: 25832
|
3 |
Sun Q, Jiang H X, Zhao J Z, et al. Microstructure evolution during the liquid-liquid phase transformation of Al-Bi alloys under the effect of TiC particles [J]. Acta Mater., 2017, 129: 321
|
4 |
Chen S Q, Hui K Z, Dong L Z, et al. Excellent long-term reactivity of inhomogeneous nanoscale Fe-based metallic glass in wastewater purification [J]. Sci. China Mater., 2020, 63: 453
|
5 |
Wang C P, Liu X J, Ohnuma I, et al. Formation of immiscible alloy powders with egg-type microstructure [J]. Science, 2002, 297: 990
|
6 |
Xian A P, Zhu Y X. The development of manufacture processing for Cu-Cr contact alloy [J]. Acta Metall. Sin., 2003, 39: 225
|
|
冼爱平, 朱耀宵. Cu-Cr触头合金制备技术的发展 [J]. 金属学报, 2003, 39: 225
|
7 |
He J, Jiang H X, Chen S, et al. Liquid phase separation in immiscible Ag-Ni-Nb alloy and formation of crystalline/amorphous composite [J]. J. Non-Cryst. Solids, 2011, 357: 3561
|
8 |
Xi Y Y, He J, Sun X J, et al. Ni-based metallic glass composites containing Cu-rich crystalline nanospheres [J]. Acta Metall. Sin. (Engl. Lett.), 2018, 31: 1130
|
9 |
He J, Mattern N, Kaban I, et al. Enhancement of glass-forming ability and mechanical behavior of zirconium-lanthanide two-phase bulk metallic glasses [J]. J. Alloys Compd., 2015, 618: 795
|
10 |
Wang Z Y, He J, Yang B J, et al. Liquid-liquid phase separation and formation of two glassy phases in Zr-Ce-Co-Cu immiscible alloys [J]. Acta Metall. Sin., 2016, 52: 1379
|
|
王中原, 何 杰, 杨柏俊等. Zr-Ce-Co-Cu难混溶合金的液-液相分离和双非晶相形成 [J]. 金属学报, 2016, 52: 1379
|
11 |
Kündig A A, Ohnuma M, Ping D H, et al. In situ formed two-phase metallic glass with surface fractal microstructure [J]. Acta Mater., 2004, 52: 2441
|
12 |
Park B J, Chang H J, Kim D H, et al. In situ formation of two amorphous phases by liquid phase separation in Y-Ti-Al-Co alloy [J]. Appl. Phys. Lett., 2004, 85: 6353
|
13 |
Chang H J, Yook W, Park E S, et al. Synthesis of metallic glass composites using phase separation phenomena [J]. Acta Mater., 2010, 58: 2483
|
14 |
Mattern N, Kühn U, Gebert A, et al. Microstructure and thermal behavior of two-phase amorphous Ni-Nb-Y alloy [J]. Scr. Mater., 2005, 53: 271
|
15 |
Han X L, Qin Y S, Qin K, et al. Glass-forming ability and early crystallization kinetics of novel Cu-Zr-Al-Co bulk metallic glasses [J]. Metals, 2016, 6: 225
|
16 |
Sun X J, He J, Chen B, et al. Microstructure formation and electrical resistivity behavior of rapidly solidified Cu-Fe-Zr immiscible alloys [J]. J. Mater. Sci. Technol., 2020, 44: 201
|
17 |
Sun X J, He J, Wang Z Y, et al. Liquid-liquid phase separation and two-phase bulk metallic glasses of Ce-Zr based alloys [J]. Sci. Sin. Technol., 2018, 48: 1413
|
|
孙小钧, 何 杰, 王中原等. Ce-Zr基合金液-液相分离机制及双相块体非晶合金研究 [J]. 中国科学: 技术科学, 2018, 48: 1413
|
18 |
Qiao J C, Wang Q, Pelletier J M, et al. Structural heterogeneities and mechanical behavior of amorphous alloys [J]. Prog. Mater. Sci., 2019, 104: 250
|
19 |
Pan J, Liu L, Chan K C. Enhanced plasticity by phase separation in CuZrAl bulk metallic glass with micro-addition of Fe [J]. Scr. Mater., 2009, 60: 822
|
20 |
He J, Zhao J Z, Ratke L. Solidification microstructure and dynamics of metastable phase transformation in undercooled liquid Cu-Fe alloys [J]. Acta Mater., 2006, 54: 1749
|
21 |
Chen B, He J, Xi Y Y, et al. Liquid-liquid hierarchical separation and metal recycling of waste printed circuit boards [J]. J. Hazard. Mater., 2019, 364: 388
|
22 |
Chen Q, Jin Z P. The Fe-Cu system: A thermodynamic evaluation [J]. Metall. Mater. Trans., 1995, 26A: 417
|
23 |
Dreval L A, Agraval P G, Turchanin M A. Enthalpy of mixing of liquid Cu-Fe-Zr alloys at 1873 K (1600oC) [J]. Metall. Mater. Trans., 2015, 46B: 2234
|
24 |
Guo C P, Du Z M, Li C R, et al. Thermodynamic description of the Al-Fe-Zr system [J]. Calphad, 2008, 32: 637
|
25 |
Hsiao H M, Liang S M, Schmid-Fetzer R, et al. Thermodynamic assessment of the Ag-Zr and Cu-Zr binary systems [J]. Calphad, 2016, 55: 77
|
26 |
Bakke E, Busch R, Johnson W L. The viscosity of the Zr46.75Ti8.25Cu7.5Ni10Be27.5 bulk metallic glass forming alloy in the supercooled liquid [J]. Appl. Phys. Lett., 1995, 67: 3260
|
27 |
Deng C K, Jiang H X, Zhao J Z, et al. Study on the solidification of Ag-Ni monotectic alloy [J]. Acta Metall. Sin., 2020, 56: 212
|
|
邓聪坤, 江鸿翔, 赵九洲等. Ag-Ni偏晶合金凝固过程研究 [J]. 金属学报, 2020, 56: 212
|
28 |
Chung S J, Hong K T, Ok M R, et al. Analysis of the crystallization of Zr41Ti14Cu12.5Ni10Be22.5 bulk metallic glass using electrical resistivity measurement [J]. Scr. Mater., 2005, 53: 223
|
29 |
Haruyama O, Miyazawa T, Saida J, et al. Change in electrical resistivity due to icosahedral phase precipitation in Zr70Pd20Ni10 and Zr65Al7.5Cu7.5Ni10Ag10 glasses [J]. Appl. Phys. Lett., 2001, 79: 758
|
30 |
Li M X, Zhao S F, Zhen L, et al. High-temperature bulk metallic glasses developed by combinatorial methods [J]. Nature, 2019, 569: 99
|
31 |
Ichitsubo T, Matsubara E, Yamamoto T, et al. Microstructure of fragile metallic glasses inferred from ultrasound-accelerated crystallization in Pd-based metallic glasses [J]. Phys. Rev. Lett., 2005, 95: 245501
|
32 |
Cohen M H, Turnbull D. Molecular transport in liquids and glasses [J]. J. Chem. Phys., 1959, 31: 1164
|
33 |
Argon A S, Kuo H Y. Plastic flow in a disordered bubble raft (an analog of a metallic glass) [J]. Mater. Sci. Eng., 1979, 39: 101
|
34 |
Wang Z, Wang W H. Flow units as dynamic defects in metallic glassy materials [J]. Natl. Sci. Rev., 2019, 6: 304
|
35 |
Johnson W L, Samwer K. A universal criterion for plastic yielding of metallic glasses with a (T / Tg)2/3 temperature dependence [J]. Phys. Rev. Lett., 2005, 95: 195501
|
36 |
Pan D, Inoue A, Sakurai T, et al. Experimental characterization of shear transformation zones for plastic flow of bulk metallic glasses [J]. Proc. Natl. Acad. Sci. USA, 2008, 105: 14769
|
37 |
Nandam S H, Ivanisenko Y, Schwaiger R, et al. Cu-Zr nanoglasses: Atomic structure, thermal stability and indentation properties [J]. Acta Mater., 2017, 136: 181
|
38 |
Şopu D, Ritter Y, Gleiter H, et al. Deformation behavior of bulk and nanostructured metallic glasses studied via molecular dynamics simulations [J]. Phys. Rev., 2011, 83B: 100202
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