S.J. Golden
University of Queensland
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Featured researches published by S.J. Golden.
Journal of Materials Research | 1997
Jose A. Alarco; E. Olsson; S.J. Golden; A. Bhargava; T. Yamashita; John Barry; Ian D.R. Mackinnon
The microstructure of YBa2Cu3O7-δ (YBCO) materials, melt-textured in air and quenched from the temperature range 900-990°C, has been characterized using a combination of x-ray diffractometry, optical microscopy, scanning electron microscopy, transmission electron microscopy, and energy dispersive x-ray spectrometry. BaCu2O2 and BaCuO2 were found to coexist in samples quenched from the temperature range 920-960°C. The formation of BaCu2O2 preceded the formation of YBCO. Once the YBCO had formed, BaCu2O2 was present at the solidification front filling the space between nearly parallel platelets of YBCO. Large Y2BaCuO5 particles at the solidification front appeared divided into smaller ones as a result of their dissolution in the liquid that quenched as BaCu2O2.
Physica C-superconductivity and Its Applications | 1993
S.J. Golden; T. Yamashita; A. Bhargarva; John Barry; Ian D.R. Mackinnon; David Page
Wires of YBa2Cu3O7-x were fabricated by extrusion using a hydroxypropyl methylcellulose (HPMC) binder. As little as 2 wt.% binder was added to an oxide prepared by a novel co-precipitation process, to produce a plastic mass which readily gave continuous extrusion of long lengths of wire in a reproducible fashion. Critical temperatures of 92 K were obtained for wires given optimum high-temperature heat treatments. Critical current densities greater than 1000 A cm-1 were measured at 77.3 K using heat treatments at around 910°C for 10 h. These transport critical current densities, measured on centimeter-long wires, were obtained with microstructures showing a relatively dense and uniform distribution of randomly oriented, small YBa2Cu3O7-x grains.
Materials Letters | 1997
T. Yamashita; A. Bhargava; S.J. Golden; John Barry; David Page; Ian D.R. Mackinnon
YBCO wires which consist of well oriented plate-like fine grains are fabricated using a moving furnace to achieve higher mechanical strength. Melt-texturing experiments have been undertaken on YBCO wires with two different compositions: YBa1.5Cu2.9O7-x, and YBa1.8Cu3.0O7-x. Wires are extruded from a mixture of precursor powders (formed by a coprecipitation process) then textured by firing in a moving furnace. Size of secondary phases such as barium cuprate and copper oxide, and overall composition of the sample affect the orientation of the fine grains. At zero magnetic field, the YBa1.5Cu2.9O7-x wire shows the highest critical current density of 1,450 Acm-2 and 8,770 Acm-2 at 77K and 4.2K, respectively. At 1 T, critical current densities of 30 Acm-2 and 200 Acm-2, respectively, are obtained at 77K and 4.2K. Magnetisation curves are also obtained for one sample to evaluate critical current density using the Bean model. Analysis of the microstructure indicates that the starting composition of the green body significantly affects the achievement of grain alignment via melt-texturing processes.
Proceedings of the Symposium on Processing of Long Lengths of Superconductors | 1994
T. Yamashita; A. Bhargava; S.J. Golden; R.P. Zhao; David Page; John Barry; Ian D.R. Mackinnon
Institute for Future Environments; Science & Engineering Faculty | 1997
Jose A. Alarco; E. Olsson; S.J. Golden; A. Bhargava; T. Yamashita; John Barry; Ian D.R. Mackinnon
Institute for Future Environments; Science & Engineering Faculty | 1997
T. Yamashita; A. Bhargava; S.J. Golden; John Barry; David Page; Ian D.R. Mackinnon
Institute for Future Environments; Science & Engineering Faculty | 1994
S.J. Golden; T. Yamashita; A. Bhargava; John Barry; Ian D.R. Mackinnon
School of Chemistry, Physics & Mechanical Engineering; Institute for Future Environments; Science & Engineering Faculty | 1993
S.J. Golden; T. Yamashita; A. Bhargava; John Barry; Ian D.R. Mackinnon
Institute for Future Environments; Science & Engineering Faculty | 1993
S.J. Golden; T. Yamashita; A. Bhargarva; John Barry; Ian D.R. Mackinnon; David Page