TY - JOUR
T1 - Flux-pinning properties of BaHfO 3 -doped EuBCO-coated conductors fabricated by Hot-Wall PLD
AU - Fujita, Shinji
AU - Muto, Shogo
AU - Hirata, Wataru
AU - Yoshida, Tomo
AU - Kakimoto, Kazuomi
AU - Iijima, Yasuhiro
AU - Daibo, Masanori
AU - Kiss, Takanobu
AU - Okada, Tatsunori
AU - Awaji, Satoshi
N1 - Publisher Copyright:
© 2002-2011 IEEE.
PY - 2019
Y1 - 2019
N2 - REBa 2 Cu 3 O x (REBCO, RE = rare earth) coated conductors (CCs) are promising as superconducting wires for high-field magnets because of their high in-field critical current density (J c ) performance and high tensile tolerance. Fujikura, Ltd., has been developing BaHfO 3 (BHO)-doped EuBa 2 Cu 3 O x (EuBCO, Eu = Europium) CCs using a hot-wall-type pulsed-laser deposition (PLD) in order to further improve the in-field performance. Although a high deposition rate in the PLD process is necessary for mass production, it has been found that the in-field performance greatly differ depending on the deposition rate. In this study, flux pinning properties of BHO-doped EuBCO CCs fabricated with different deposition rates by the hot-wall PLD on IBAD substrates were investigated in detail. From the scaling characteristics of the flux-pinning force density (F p ) curve, the BHO precipitates in a fast deposition rate REBCO film appeared to behave like random pinning centers, which was almost consistent with a result of transmission electron microscope observation. On the other hand, from a decrease of anisotropy in the magnetic field angle dependence of J c , it was also confirmed that BHO precipitates were not completely random pinning centers, that is, it has some kind of anisotropy. Considering the critical current value per production time, it was also found that the fast deposition rate is advantageous since the REBCO layer could be thicker.
AB - REBa 2 Cu 3 O x (REBCO, RE = rare earth) coated conductors (CCs) are promising as superconducting wires for high-field magnets because of their high in-field critical current density (J c ) performance and high tensile tolerance. Fujikura, Ltd., has been developing BaHfO 3 (BHO)-doped EuBa 2 Cu 3 O x (EuBCO, Eu = Europium) CCs using a hot-wall-type pulsed-laser deposition (PLD) in order to further improve the in-field performance. Although a high deposition rate in the PLD process is necessary for mass production, it has been found that the in-field performance greatly differ depending on the deposition rate. In this study, flux pinning properties of BHO-doped EuBCO CCs fabricated with different deposition rates by the hot-wall PLD on IBAD substrates were investigated in detail. From the scaling characteristics of the flux-pinning force density (F p ) curve, the BHO precipitates in a fast deposition rate REBCO film appeared to behave like random pinning centers, which was almost consistent with a result of transmission electron microscope observation. On the other hand, from a decrease of anisotropy in the magnetic field angle dependence of J c , it was also confirmed that BHO precipitates were not completely random pinning centers, that is, it has some kind of anisotropy. Considering the critical current value per production time, it was also found that the fast deposition rate is advantageous since the REBCO layer could be thicker.
KW - Artificial pinning center
KW - coated conductors
KW - critical current
KW - pulsed laser deposition
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U2 - 10.1109/TASC.2019.2896535
DO - 10.1109/TASC.2019.2896535
M3 - Article
AN - SCOPUS:85062274843
SN - 1051-8223
VL - 29
JO - IEEE Transactions on Applied Superconductivity
JF - IEEE Transactions on Applied Superconductivity
IS - 5
M1 - 8629911
ER -