| Literature DB >> 26973431 |
G Z Li1, M D Sumption1, E W Collings1.
Abstract
Significantly enhanced critical current density (Jc) for MgB2 superconducting wires can be obtained following the advanced internal Mg infiltration (AIMI) route. But unless suitable precautions are taken, the AIMI-processed MgB2 wires will exhibit incomplete MgB2 layer formation, i.e. reduced superconductor core size and hence suppressed current-carrying capability. Microstructural characterization of AIMI MgB2 wires before and after the heat treatment reveals that the reaction mechanism changes from a "Mg infiltration-reaction" at the beginning of the heat treatment to a "Mg diffusion-reaction" once a dense MgB2 layer is formed. A drastic drop in the Mg transport rate from infiltration to diffusion causes the termination of the MgB2 core growth. To quantify this process, a two-stage kinetic model is built to describe the MgB2 layer formation and growth. The derived kinetic model and the associated experimental observations indicate that fully reacted AIMI-processed MgB2 wires can be achieved following the optimization of B particle size, B powder packing density, MgB2 reaction activation energy and its response to the additions of dopants.Entities:
Keywords: AIMI; Magnesium diboride; electron microscopy; infiltration; kinetics
Year: 2015 PMID: 26973431 PMCID: PMC4782970 DOI: 10.1016/j.actamat.2015.06.013
Source DB: PubMed Journal: Acta Mater ISSN: 1359-6454 Impact factor: 8.203