Published March 14, 2007 | Version v1
Journal article

Electrical, magnetic, thermal and thermoelectric properties of the 'Bergman phase' Mg32(Al,Zn)49 complex metallic alloy

  • 1. Institute of Physics, Bijenicka 46, P.O. Box 304, HR-10001 Zagreb (Croatia)
  • 2. Faculty of Natural Sciences, Mathematics and Education, Teslina 12, HR-21000 Split (Croatia)
  • 3. Institute of Mathematics, Physics and Mechanics, Jadranska 19, SI-1000 Ljubljana (Slovenia)
  • 4. J. Stefan Institute, University of Ljubljana, Jamova 39, SI-1000 Ljubljana (Slovenia)
  • 5. Institut fuer Festkoerperforschung, Forschungszentrum Juelich, Juelich D-52425 (Germany)

Description

The Mg-Al-Zn system of intermetallics contains an exceptional crystalline phase Mg32(Al,Zn)49, named the Bergman phase, whose crystal structure is based on a periodic arrangement of icosahedral Bergman clusters within the giant-unit-cell, so that periodic and quasiperiodic atomic orders compete in determining the physical properties of the material. We have investigated electrical, magnetic, thermal and thermoelectric properties of a monocrystalline Bergman phase sample of composition Mg29.4(Al,Zn)51.6, grown by the Bridgman technique. Electrical resistivity is in the range ρ ∼ 40 μΩ cm and exhibits positive-temperature-coefficient with T 2 dependence at low temperatures and T at higher temperatures, resembling non-magnetic amorphous alloys. Magnetic susceptibility χ measurements revealed that the sample is a Pauli paramagnet with a significant Landau diamagnetic orbital contribution. The susceptibility exhibits a weak increase towards higher temperature. Combined analysis of the ρ(T) and χ(T), together with the independent determination of the Pauli susceptibility via the NMR Knight shift suggests that the observed temperature dependence originates from the mean-free-path effect on the orbital susceptibility. The electronic density of states (DOS) at the Fermi energy E F was estimated by NMR and was found to amount 72% of the DOS of the fcc Al metal, with no evidence on the existence of a pseudogap. Thermal conductivity contains electronic, Debye and hopping of localized vibrations terms, whereas thermopower is small and negative. High structural complexity of the Bergman phase does not result in high complexity of its electronic structure

Additional details

Identifiers

DOI
10.1016/j.jallcom.2006.05.026;
PII
S0925-8388(06)00538-X;

Publishing Information

Journal Title
Journal of Alloys and Compounds
Journal Volume
430
Journal Issue
1-2
Journal Page Range
p. 29-38
ISSN
0925-8388
CODEN
JALCEU

Optional Information

Copyright
Copyright (c) 2006 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.