Magnetic field dependence of critical current and index n in a Bi-2223/Ag superconductor tape

Bi-2223/Ag 초전도 선재에서 임계전류와 인덱스의 자계의존성

  • Kim Jung Ho (School of Metallurgical and materials Engineering, Sungkyunkwan University) ;
  • Kim Kyu Tae (School of Metallurgical and materials Engineering, Sungkyunkwan University) ;
  • Lim Jun Hyung (School of Metallurgical and materials Engineering, Sungkyunkwan University) ;
  • Jang Seok Hern (School of Metallurgical and materials Engineering, Sungkyunkwan University) ;
  • Rho Yun Bong (School of Metallurgical and materials Engineering, Sungkyunkwan University) ;
  • Joo Jinho (School of Metallurgical and materials Engineering, Sungkyunkwan University) ;
  • Choi Seyong (School of Information and Communicatin Engineering, Sungkyunkwan University) ;
  • Nah Wansoo (School of Information and Communicatin Engineering, Sungkyunkwan University) ;
  • Hong Gye-Won (Department of Electronics Enginering, Korea Polytechnic University)
  • Published : 2004.10.01

Abstract

We fabricated Bi-2223/Ag superconductor tape with 55 filaments and estimated the magnetic field dependence of critical current (I$_{c}$) and index n (n) up to 30 T at 4.2 K. The I$_{c}$ and n were characterized as a function of external magnetic field parallel to the tape surface on increasing and decreasing field, using a 35 T hybrid magnet. The $I_{c}$ was estimated to be 325 A, and n was 32, 22, and 26 in the electric field range of $0.1 ∼1\mu$V/cm, 1∼10 $\mu$V/cm, and 0.1∼10 $\mu$V/cm, respectively, under self-field at 4.2 K. It was observed that $I_{c}$ was dependent on magnitude of magnetic field and it decreased exponentially as the field increased; in a parallel and increasing field, It was 128 A at 30 T which is approximately 40% of critical current in self-field. In addition, the $I_{c}$ was higher on decreasing field than that on increasing one. On the other hand, n did not significantly depend on field strength up to 30 T, nor varied on whether increasing or decreasing field; n value in 0.1∼1 $\mu$V/cm was 23.0$\pm$5.2 and 27.8$\pm$8.0 on increasing and decreasing field, respectively. The n value on decreasing magnetic field was slightly higher than that on increasing field. This hysteretic behavior of n was similar to that of$ I_{c}$, which is related to the trapped flux at the grain boundary.ary.

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