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Formation of Al67Cu23Fe10 quasicrystals by microwave heating

  • The present work was carried out to compare the formation of single icosahedral phase during conventional heating and microwave processing. Al67Cu23Fe10 alloy powder was synthesized from high purity (99.9%) powder elements by mechanical alloying. Differential scanning calorimetry combined with in-situ synchrotron energy dispersive X-ray diffraction was used to identify the main solid state reactions and the phase evolution of the powders. Inductive microwave processing in the magnetic field anti-node was performed to obtain the quasicrystalline phase in only a few seconds. Due to the rapid cooling of the sample it was possible to stabilize the icosahedral phase against its competing quasicrystalline approximants. Laboratory X-ray diffraction analysis was used to characterise the atomic structure of the specimen and scanning electron microscopy was used to characterise the microstructure after the microwave processing.

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Metadaten
Author details:Carmen Mihoc, Daniel Schick, Matthias Lütgens, Christian Lathe, Eberhard Burkel
DOI:https://doi.org/10.3139/146.110786
ISSN:1862-5282
Title of parent work (English):International journal of materials research : Zeitschrift für Metallkunde
Publisher:Hanser
Place of publishing:München
Publication type:Article
Language:English
Year of first publication:2012
Publication year:2012
Release date:2017/03/26
Tag:Mechanical alloying; Microwave processing; Quasicrystals
Volume:103
Issue:11
Number of pages:5
First page:1340
Last Page:1344
Funding institution:Marie Curie Programme of the European Community [HPMD-CT-2005-020986]; European Cooperation in Science and Technology [COST- STSM-MP0701-04093]
Organizational units:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Physik und Astronomie
Peer review:Referiert
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