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논문 기본 정보

자료유형
학술저널
저자정보
황수민 (School of Advanced Materials Science and Engineering, Sungkyunkwan University) 이창민 (School of Advanced Materials Science and Engineering, Sungkyunkwan University) 임준형 (School of Advanced Materials Science and Engineering, Sungkyunkwan University) 최준혁 (School of Advanced Materials Science and Engineering, Sungkyunkwan University) 박진현 (School of Advanced Materials Science and Engineering, Sungkyunkwan University) 주진호 (School of Advanced Materials Science and Engineering, Sungkyunkwan University) 전병혁 (Neutron Science Division, Korea Atomic Energy Research Institute[KAERI]) 김찬중 (Neutron Science Division, Korea Atomic Energy Research Institute[KAERI])
저널정보
한국초전도학회 Progress in superconductivity Progress in superconductivity 제10권 제2호
발행연도
2009.1
수록면
79 - 86 (8page)

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We successfully fabricated C-doped ex-situ $MgB_2$ wires using two different methods such as mechanical alloying(MA) and combined process(CP) of in-situ and ex-situ. In the MA, the precursor powder was prepared with a mixture of $MgB_2$ and 1 at% C powders by planetary ball milling for 0-100 h. In the CP, on the other hand, C-doped $MgB_2$ powder was prepared with Mg, B, and C powders by in-situ process via compaction, sintering, and crushing. The powders prepared by two methods were loaded into Fe tube and then the assemblages were drawn by a conventional powder-in-tube technique. The MA treatment of C-added $MgB_2$ decreased the particles/grains size and resulted in C-doping into $MgB_2$ after sintering, improving the critical current density($J_c$) in high external magnetic field. For the C-doped $MgB_2$ wire by MA for 25 h, the $J_c$ was $4.1{\times}10^3A/cm^2$ at 5 K and 6.4 T, which was 5.9 times higher than that of pure and untreated $MgB_2$ wire. The CP also provided C-doping into $MgB_2$ and improved the $J_c$ in high magnetic field; the C-doped $MgB_2$ wire fabricated by CP exhibited a $J_c$ being 2.3 times higher than that of the ex-situ wire used commercial $MgB_2$ powder at 5 K and 6.0 T($2.7{\times}10^3A/cm^2\;vs.\;1.2{\times}10^3A/cm^2$).

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