Formation of MgB2at low temperatures by reaction of Mg with B6Si
L. D. Cooley, Kyongha Kang, Robert F. Klie, Qiang Li, A. R. Moodenbaugh, R. L. Sabatini
Abstract
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L. D. Cooley, Kyongha Kang, Robert F. Klie, Qiang Li, A. R. Moodenbaugh, R. L. Sabatini
Abstract
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Formation of MgB2 by reactions of Mg with B6Si and Mg with B were compared, the former also producing Mg2Si as a major product. Compared to the binary system, the ternary reactions for identical time and temperature were more complete at 750 C and below, as indicated by higher diamagnetic shielding and larger x-ray diffraction peak intensities relative to those of Mg. MgB2 could be produced at temperatures as low as 450 C by the ternary reaction. Analyses by electron microscopy, x-ray diffraction, and of the upper critical field show that Si does not enter the MgB2 phase.
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Formation of MgB2 by reactions of Mg with B6Si and Mg with B were compared, the former also producing Mg2Si as a major product. Compared to the binary system, the ternary reactions for identical time and temperature were more complete at 750 C and below, as indicated by higher diamagnetic shielding and larger x-ray diffraction peak intensities relative to those of Mg. MgB2 could be produced at temperatures as low as 450 C by the ternary reaction. Analyses by electron microscopy, x-ray diffraction, and of the upper critical field show that Si does not enter the MgB2 phase.
Key concepts: Diamagnetism, Ternary operation, Diffraction, Critical field, Crystallography, Phase (matter), Materials science, Electron diffraction