Improving the Critical Temperature of MgB2 Superconducting Metamaterials Induced by Electroluminescence

被引:17
|
作者
Zhang, Zhiwei [1 ]
Tao, Shuo [1 ]
Chen, Guowei [1 ]
Zhao, Xiaopeng [1 ]
机构
[1] Northwestern Polytech Univ, Dept Appl Phys, Smart Mat Lab, Xian 710129, Peoples R China
基金
中国国家自然科学基金;
关键词
Y2O3:Eu3+ nanorods; MgB2; superconductor; Solid-state method; T-C; FABRICATION;
D O I
10.1007/s10948-015-3344-7
中图分类号
O59 [应用物理学];
学科分类号
摘要
The MgB2 superconductor was doped with electroluminescent Y2O3:Eu, to synthesise a superconducting metamaterial. The temperature dependence of the resistivity of the superconductor indicates that the critical temperature (T (C)) of samples decreases when increasing the amount of doped Y (2) O (3) nanorods, due to impurity (Y (2) O (3), MgO and YB (4)). However, the T (C) of the samples increase with increasing amount of doped Y (2) O (3):Eu (3+) nanorods, which are opposite to doped Y (2) O (3) nanorods. Moreover, the transition temperature of the sample doped with 8 wt % Y (2) O (3):Eu (3+)nanorods is higher than those of doped and pure MgB (2). The T (C) of the sample doped with 8 wt % Y (2) O (3):Eu (3+) nanorods is 1.15 K higher than that of the sample doped with 8 wt % Y (2) O (3). The T (C) of sample doped with 8 wt% Y (2) O (3):Eu (3+) is 0.4 K higher than that of pure MgB (2). Results indicate that doping electroluminescent materials into MgB (2) increases the transition temperature; this novel strategy may also be applicable to other superconductors.
引用
收藏
页码:1159 / 1162
页数:4
相关论文
共 50 条
  • [21] Critical current density and flux pinning in superconducting MgB2
    Matsushita, T.
    Kiuchi, M.
    Yamamoto, A.
    Shimoyama, J.
    Kishio, K.
    PHYSICA C-SUPERCONDUCTIVITY AND ITS APPLICATIONS, 2008, 468 (15-20): : 1833 - 1835
  • [22] Upper critical field and irreversibility line in superconducting MgB2
    Fuchs, G
    Müller, KH
    Handstein, A
    Nenkov, K
    Narozhnyi, VN
    Eckert, D
    Wolf, M
    Schultz, L
    SOLID STATE COMMUNICATIONS, 2001, 118 (10) : 497 - 501
  • [23] Superconducting MgB2 microstrips
    Strbík, V
    Chromik, S
    Benacka, S
    Gazi, S
    CZECHOSLOVAK JOURNAL OF PHYSICS, 2004, 54 : D505 - D508
  • [24] Superconducting cellular MgB2
    V. A. Grinenko
    E. P. Krasnoperov
    B. P. Mikhailov
    The Physics of Metals and Metallography, 2007, 103 : 561 - 565
  • [25] Boundary Effect and Critical Temperature of Two-Band Superconducting Films: Application to MgB2
    Chen, Jia-Hui
    Che, Jian-Tao
    Ye, Chen-Xiao
    Huang, Hai
    JOURNAL OF LOW TEMPERATURE PHYSICS, 2023, 212 (3-4) : 113 - 126
  • [26] Extreme Learning Machine Approach to Modeling the Superconducting Critical Temperature of Doped MgB2 Superconductor
    Olatunji, Sunday Olusanya
    Owolabi, Taoreed
    CRYSTALS, 2022, 12 (02)
  • [27] Effect of negative pressure on superconducting transition temperature of MgB2
    Zhang, Chengguo
    Zhang, X.
    COMPUTATIONAL MATERIALS SCIENCE, 2011, 50 (03) : 1097 - 1101
  • [28] Preparation of MgB2 superconducting thin films at low temperature
    Zhou, Zhangyu
    Yang, Fashun
    JianYang
    Wang, Song
    Fu, Xinghua
    ADVANCED MECHANICAL DESIGN, PTS 1-3, 2012, 479-481 : 1781 - 1785
  • [29] Low-temperature specific heat of superconducting MgB2
    Luo, JL
    Zhang, J
    Chen, ZJ
    Bai, HY
    Wang, YP
    Meng, JB
    Jin, D
    Ren, ZA
    Che, GC
    Zhao, ZX
    CHINESE PHYSICS LETTERS, 2001, 18 (06) : 820 - 822
  • [30] Temperature Dependence of Superconducting Gap and Penetration Depth for MgB2
    Karakaya, Seniye
    Ozbas, Omer
    2ND INTERNATIONAL ADVANCES IN APPLIED PHYSICS AND MATERIALS SCIENCE CONGRESS, 2012, 1476 : 285 - 288