TY - JOUR
T1 - Comparison of Critical Current Density in Undoped, Glycine-doped, and Cu-and-Glycine-Co-doped MgB2 Synthetized from nm-Boron and μm-Boron
AU - Wu, Fengying
AU - Cai, Qi
N1 - Publisher Copyright:
© 2014, Springer Science+Business Media New York.
PY - 2014/9/1
Y1 - 2014/9/1
N2 - Nano-boron (800 nm) and μm-boron (25 μm) precursor were used to synthetize glycine-doped, Cu-and-glycine-co-doped, and undoped MgB2 samples at 800 ∘C. The C substitution level caused by glycine doping, the MgO content, and the full width at half maximum of the (101) peak for MgB2 phase were compared to evaluate the critical current density (Jc) of the six samples. The undoped sample from the nm-boron powder showed enhanced Jc over the entire field in contrast with those from 25-um boron, since the excess MgO in nm-boron prepared sample serves as effective pinning centers. On the contrary, due to the reduced MgO pinning centers as well as the increase of the grain size, the glycine-doped nm-boron sample only enhanced the Jc performance in the high-field region (H>4.5 T), while the low-field Jc values showed a considerable decrease. For the Cu-and-glycine-co-doped sample, the Jc performance is nearly without regard to the size of the boron precursor as the high-field Jc of the nm-B sample decreased a little, while the low-field Jc remained at the same level as that of the μm-B sample.
AB - Nano-boron (800 nm) and μm-boron (25 μm) precursor were used to synthetize glycine-doped, Cu-and-glycine-co-doped, and undoped MgB2 samples at 800 ∘C. The C substitution level caused by glycine doping, the MgO content, and the full width at half maximum of the (101) peak for MgB2 phase were compared to evaluate the critical current density (Jc) of the six samples. The undoped sample from the nm-boron powder showed enhanced Jc over the entire field in contrast with those from 25-um boron, since the excess MgO in nm-boron prepared sample serves as effective pinning centers. On the contrary, due to the reduced MgO pinning centers as well as the increase of the grain size, the glycine-doped nm-boron sample only enhanced the Jc performance in the high-field region (H>4.5 T), while the low-field Jc values showed a considerable decrease. For the Cu-and-glycine-co-doped sample, the Jc performance is nearly without regard to the size of the boron precursor as the high-field Jc of the nm-B sample decreased a little, while the low-field Jc remained at the same level as that of the μm-B sample.
KW - Boron size difference
KW - Critical current density
KW - Glycine doping
KW - MgB superconductor
UR - http://www.scopus.com/inward/record.url?scp=84927805292&partnerID=8YFLogxK
U2 - 10.1007/s10948-014-2576-2
DO - 10.1007/s10948-014-2576-2
M3 - Article
AN - SCOPUS:84927805292
SN - 1557-1939
VL - 27
SP - 2023
EP - 2027
JO - Journal of Superconductivity and Novel Magnetism
JF - Journal of Superconductivity and Novel Magnetism
IS - 9
ER -