Please wait a minute...
Chin. Phys. B, 2021, Vol. 30(3): 038103    DOI: 10.1088/1674-1056/abc7a8
INTERDISCIPLINARY PHYSICS AND RELATED AREAS OF SCIENCE AND TECHNOLOGY Prev   Next  

Effects of Nb and Mo additions on thermal behavior, microstructure and magnetic property of FeCoZrBGe alloy

Yaming Sun(孙亚明)1, Zhiqun Wang(王志群)2, Shi-Chong Xu(徐仕翀)1, and Zhong Hua(华中)1,
1 National Demonstration Center for Experimental Physics Education, Jilin Normal University, Siping 136000, China; 2 State Grid Economic Research Institute of East Inner Mongolia Electric Power Company Limited, Hohhot 010020, China
Abstract  Both Nb and Mo additions play a vital role in FeCo-based alloys and it is crucial to understand their roles and contents on thermal behavior, microstructural feature and magnetic property of alloys. Nanocrystalline alloy ribbons Fe40Co40Zr9-yMyB10Ge1 (y=0-4; M= Nb, Mo) were prepared by crystallizing the as-quenched amorphous alloys. The effects of Nb and Mo additions on structures and properties of the Fe40Co40Zr9B10Ge1 alloy are investigated systemically and compared. With increasing Nb or Mo content, the primary crystallization temperature, grain size of α -Fe(Co) phase and coercivity H c all decrease. Moreover, the effect of Mo addition on thermal behavior, microstructure and magnetic properties of the FeCoZrBGe alloy is greater compared to Nb addition. The gap between primary and secondary crystallization peaks of Mo-containing alloys is wider than that of Nb-containing alloys. Both grain size and H c of Mo-containing alloys are smaller than those of Nb-containing alloys. For Fe40Co40Zr9B10Ge1 alloy, high Mo addition proportion is better compared to high Nb addition proportion.
Keywords:  alloy      Nb addition      Mo addition      transmission electron microscopy  
Received:  17 September 2020      Revised:  22 October 2020      Accepted manuscript online:  05 November 2020
PACS:  81.07.Bc (Nanocrystalline materials)  
  75.75.-c (Magnetic properties of nanostructures)  
Fund: Project supported by the National Natural Science Foundation of China (Grant No. 51301075) and supported by Sinoma Institute of Materials Research (Guang Zhou) Co., Ltd.
Corresponding Authors:  Corresponding author. E-mail: huazhong196110@163.com   

Cite this article: 

Yaming Sun(孙亚明), Zhiqun Wang(王志群), Shi-Chong Xu(徐仕翀), and Zhong Hua(华中) Effects of Nb and Mo additions on thermal behavior, microstructure and magnetic property of FeCoZrBGe alloy 2021 Chin. Phys. B 30 038103

1 Liu T, Li F C, Wang A D, Xie L, He Q F, Luan J H, He A N, Wang X M, Liu C T and Yang Y 2019 J. Alloys Compd. 776 606
2 Jha R, Diercks D R and Chakraborti N 2019 Scripta Mater. 162 331
3 Mchenry M E, Willard M A and Laughlin D E 1999 Prog. Mater. Sci. 44 291
4 Xie L, Liu T, He A, Li Q, Gao Z K, Wang A D, Chang C T, Wang X M and Liu C T 2018 J. Mater. Sci. 53 1437
5 Wang Y C, Zhang Y, Kawazoe Y, Shen J and Cao C D 2018 Chin. Phys. B 27 116401
6 Xie L, Wang A D, Yue S Q, He A N, Chang C T, Li Q, Wang X M and Liu C T 2019 J. Magn. Magn. Mater. 483 158
7 Lashgari H R, Chu D, Xie S, Sun H, Ferry M and Li S 2014 J. Non-Cryst. Solids 319 61
8 Zhang L, Wang Z and Xu Y C 2018 J. Non-Cryst. Solids 481 148
9 Li Y, Wang Z and Zhang W 2018 AIP Adv. 8 056115
10 Zhang J W, Zhang X Y, Xiao F R, Liu J H and Zheng Y Z 1998 Mater. Lett. 36 223
11 Perduta K, Zbroszczyk J, Olszewski J, Fukunaga H, Ciurzy\'nska W, Hasiak M and Lela\ctko J 2006 J. Magn. Magn. Mater. 304 e862
12 Lu W, Fan J W, Wang Y X and Yan B 2010 J. Magn. Magn. Mater. 322 2935
13 Silveyra J M, Illeková E, \vSvec P, Jani\vckovi\vc D, Rosales-Rivera A and Cremaschi V J 2010 Physica B 405 2720
14 Silveyra J M and Illekov E 2014 J. Alloy Compd. 610 180
15 Yu W Q, Zeng H Q, Sun Y M and Hua Z 2017 Phys. Lett. A 381 1573
16 Yu W Q, Long D, Liu Y D, Sun Y M and Hua Z 2015 Acta Phys. Pol. A 128 340
17 Yu W Q, Sun Y M and Hua Z 2011 Appl. Surf. Sci. 257 9733
18 Takeuchi A and Inoue A 2005 Mater. Trans. 46 2817
19 Suzuki K, Cadogan J M 1998 Phys. Rev. B 58 2730
20 Bitoh T, Makino A, Inoue A and Masumoto T 2003 Mater. Trans. 44 2011
[1] Atomic simulations of primary irradiation damage in U-Mo-Xe system
Wen-Hong Ouyang(欧阳文泓), Jian-Bo Liu(刘剑波), Wen-Sheng Lai(赖文生),Jia-Hao Li(李家好), and Bai-Xin Liu(柳百新). Chin. Phys. B, 2023, 32(3): 036101.
[2] Tunable topological interface states and resonance states of surface waves based on the shape memory alloy
Shao-Yong Huo(霍绍勇), Long-Chao Yao(姚龙超), Kuan-Hong Hsieh(谢冠宏), Chun-Ming Fu(符纯明), Shih-Chia Chiu(邱士嘉), Xiao-Chao Gong(龚小超), and Jian Deng(邓健). Chin. Phys. B, 2023, 32(3): 034303.
[3] Atomic-scale insights of indium segregation and its suppression by GaAs insertion layer in InGaAs/AlGaAs multiple quantum wells
Shu-Fang Ma(马淑芳), Lei Li(李磊), Qing-Bo Kong(孔庆波), Yang Xu(徐阳), Qing-Ming Liu(刘青明), Shuai Zhang(张帅), Xi-Shu Zhang(张西数), Bin Han(韩斌), Bo-Cang Qiu(仇伯仓), Bing-She Xu(许并社), and Xiao-Dong Hao(郝晓东). Chin. Phys. B, 2023, 32(3): 037801.
[4] Formation of quaternary all-d-metal Heusler alloy by Co doping fcc type Ni2MnV and mechanical grinding induced B2-fcc transformation
Lu Peng(彭璐), Qiangqiang Zhang(张强强), Na Wang(王娜), Zhonghao Xia(夏中昊), Yajiu Zhang(张亚九),Zhigang Wu(吴志刚), Enke Liu(刘恩克), and Zhuhong Liu(柳祝红). Chin. Phys. B, 2023, 32(1): 017102.
[5] Microstructure and hardening effect of pure tungsten and ZrO2 strengthened tungsten under carbon ion irradiation at 700℃
Chun-Yang Luo(罗春阳), Bo Cui(崔博), Liu-Jie Xu(徐流杰), Le Zong(宗乐), Chuan Xu(徐川), En-Gang Fu(付恩刚), Xiao-Song Zhou(周晓松), Xing-Gui Long(龙兴贵), Shu-Ming Peng(彭述明), Shi-Zhong Wei(魏世忠), and Hua-Hai Shen(申华海). Chin. Phys. B, 2022, 31(9): 096102.
[6] Tunable anharmonicity versus high-performance thermoelectrics and permeation in multilayer (GaN)1-x(ZnO)x
Hanpu Liang(梁汉普) and Yifeng Duan(段益峰). Chin. Phys. B, 2022, 31(7): 076301.
[7] Non-volatile multi-state magnetic domain transformation in a Hall balance
Yang Gao(高阳), Jingyan Zhang(张静言), Pengwei Dou(窦鹏伟), Zhuolin Li(李卓霖), Zhaozhao Zhu(朱照照), Yaqin Guo(郭雅琴), Chaoqun Hu(胡超群), Weidu Qin(覃维都), Congli He(何聪丽), Shipeng Shen(申世鹏), Ying Zhang(张颖), and Shouguo Wang(王守国). Chin. Phys. B, 2022, 31(6): 067502.
[8] Effect of void size and Mg contents on plastic deformation behaviors of Al-Mg alloy with pre-existing void: Molecular dynamics study
Ning Wei(魏宁), Ai-Qiang Shi(史爱强), Zhi-Hui Li(李志辉), Bing-Xian Ou(区炳显), Si-Han Zhao(赵思涵), and Jun-Hua Zhao(赵军华). Chin. Phys. B, 2022, 31(6): 066203.
[9] Effect of the target positions on the rapid identification of aluminum alloys by using filament-induced breakdown spectroscopy combined with machine learning
Xiaoguang Li(李晓光), Xuetong Lu(陆雪童), Yong Zhang(张勇),Shaozhong Song(宋少忠), Zuoqiang Hao(郝作强), and Xun Gao(高勋). Chin. Phys. B, 2022, 31(5): 054212.
[10] Alloying and magnetic disordering effects on phase stability of Co2 YGa (Y=Cr, V, and Ni) alloys: A first-principles study
Chun-Mei Li(李春梅), Shun-Jie Yang(杨顺杰), and Jin-Ping Zhou(周金萍). Chin. Phys. B, 2022, 31(5): 056105.
[11] Evolution of defects and deformation mechanisms in different tensile directions of solidified lamellar Ti-Al alloy
Yutao Liu(刘玉涛), Tinghong Gao(高廷红), Yue Gao(高越), Lianxin Li(李连欣), Min Tan(谭敏), Quan Xie(谢泉), Qian Chen(陈茜), Zean Tian(田泽安), Yongchao Liang(梁永超), and Bei Wang(王蓓). Chin. Phys. B, 2022, 31(4): 046105.
[12] Formation of L10-FeNi hard magnetic material from FeNi-based amorphous alloys
Yaocen Wang(汪姚岑), Ziyan Hao(郝梓焱), Yan Zhang(张岩), Xiaoyu Liang(梁晓宇), Xiaojun Bai(白晓军), and Chongde Cao(曹崇德). Chin. Phys. B, 2022, 31(4): 046301.
[13] Helium bubble formation and evolution in NiMo-Y2O3 alloy under He ion irradiation
Awen Liu(刘阿文), Hefei Huang(黄鹤飞), Jizhao Liu(刘继召), Zhenbo Zhu(朱振博), and Yan Li(李燕). Chin. Phys. B, 2022, 31(4): 046102.
[14] Spin current transmission in Co1-xTbx films
Li Wang(王力), Yangtao Su(苏仰涛), Yang Meng(孟洋), Haibin Shi(石海滨), Xinyu Cao(曹昕宇), and Hongwu Zhao(赵宏武). Chin. Phys. B, 2022, 31(2): 027504.
[15] Comparison of formation and evolution of radiation-induced defects in pure Ni and Ni-Co-Fe medium-entropy alloy
Lin Lang(稂林), Huiqiu Deng(邓辉球), Jiayou Tao(陶家友), Tengfei Yang(杨腾飞), Yeping Lin(林也平), and Wangyu Hu(胡望宇). Chin. Phys. B, 2022, 31(12): 126102.
No Suggested Reading articles found!