Title :
Effects of the platelet structures on the melt textured growth YBCO superconductors
Author :
Hong, Inki ; Hwang, Hyunseok ; Han, Yung-Hee ; Han, Sang-Chul ; Sung, Tae-Hyun ; No, Kwangsoo
Author_Institution :
Dept. of Mater. Sci. & Eng., Korea Adv. Inst. of Sci. & Technol., Taejon, South Korea
fDate :
6/1/2003 12:00:00 AM
Abstract :
Melt textured growth YBCO superconductors were fabricated by the top seeding method using Sm1.8 (Sm1.8Ba2.4Cu3.4O7-x) seed. The relationship between the Y211 particles and the platelet structures was investigated by micro-structural analysis using SEM. The microstructures of melt textured YBCO superconductors have been examined by TEM and HRTEM. The results of TEM studies clarified the direction of crystal growth and a variety of micro-defects such as twin structures and stacking faults that might behave as pinning centers. Our studies were focused on the stacking faults among those micro-defects by HRTEM and formation mechanism of the stacking faults was studied. The stacking faults formed during the tetragonal to orthorhombic transition that occurred at 450°C in oxygen annealing. The platelet structures were clearly observed by SEM due to the chemical etching effects. The lengths of stacking faults were increased as the oxygen annealing time increased from 1 hr to 50 hr. The stacking faults were considered to relate to the oxygen contents, as the platelet structures were. The results suggested an oxygen diffusion model for the formation of the stacking faults.
Keywords :
annealing; barium compounds; etching; high-temperature superconductors; scanning electron microscopy; stacking faults; transmission electron microscopy; yttrium compounds; HRTEM; SEM; Sm1.8Ba2.4Cu3.4O7-x; Sm1.8Ba2.4Cu3.4O7-x seed; TEM; YBa2Cu3O7; annealing; chemical etching effects; crystal growth; high temperature superconductor; melt textured growth YBCO superconductors; microstructural analysis; pinning centers; platelet structures; stacking faults; twin structures; Annealing; Atmosphere; Flywheels; Heat treatment; Laboratories; Materials science and technology; Microstructure; Stacking; Superconductivity; Yttrium barium copper oxide;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2003.812131