FLUX-PINNING, GRANULARITY AND THE IRREVERSIBILITY LINE OF THE HIGH-T(C) SUPERCONDUCTOR HGBA2CUO4+X

Citation
A. Umezawa et al., FLUX-PINNING, GRANULARITY AND THE IRREVERSIBILITY LINE OF THE HIGH-T(C) SUPERCONDUCTOR HGBA2CUO4+X, Nature, 364(6433), 1993, pp. 129-131
Citations number
10
Categorie Soggetti
Multidisciplinary Sciences
Journal title
NatureACNP
ISSN journal
00280836
Volume
364
Issue
6433
Year of publication
1993
Pages
129 - 131
Database
ISI
SICI code
0028-0836(1993)364:6433<129:FGATIL>2.0.ZU;2-K
Abstract
THE recent discoveries of superconductivity at 94 K in the single-CuO2 -layer compound HgBa2CuO4+x (Hg-1201)1 and at 133 K in its two- and th ree-copper-layer analogues 2(Hg-1212 and Hg-1223) have renewed interes t in the search for new high-transition-temperature (high-T(c)) superc onductors. But whatever the T(c), high values of intergrain critical c urrent density are required for large-scale applications; thus, the ma terial must have good electromagnetic connectivity between grains (it must not be electromagnetically granular) and it should be able to mai ntain its current-carrying capacity in high magnetic fields (it should have a high irreversibility field, H(T)). Putilin et al.1 surmised t hat the small CuO2 layer spacing of Hg-1201 might yield a high H(T). We report here that H(T) is indeed significantly higher than for the two- and three-copper-layer Bi-Sr-Ca-Cu-O compounds (Bi-2212 and Bi-22 23), but lower than for YBa2Cu3O7 (Y-123). The low-temperature flux pi nning is also strong. Like Y-123, however, Hg-1201 is electromagnetica lly granular. A high degree of grain alignment will probably be necess ary to remove this granularity; by analogy with the bismuth compounds, this is likely to be easier if the two-mercury-layer counterparts of Bi-22XY (Hg-2201, -2212 or -2223) can be synthesized.