The chemical homogeneity of single phase high-entropy AlB2-type Ti-Zr-Hf-Ta-TM diboride (TM = Cr, V, W, Mo), as well as Ti-Zr-I if-Mo-W solid solutions was investigated using a new method based on the comparative examination of information provided by electron microscopy and structural parameters. The study of the densification behavior was accomplished, and strong correlations among densification rate-grain coarsening-long range chemical randomization were found. High-resolution synchrotron radiation X-ray diffraction supported by grain-scale chemical analyses by energy dispersive spectroscopy indicated that homogenization of the metals was incomplete, with direct impact on the refined lattice mu-strain. The chemical inhomogeneity was on the same length scale as the grain size, which makes it hardly detectable by typical chemical mapping using energy dispersive spectroscopy. Based on this analysis, the resulting mu-strain broadening is not an intrinsic property of the material, but strongly depends on its processing history.

Monteverde, F., Saraga, F., Gaboardi, M., Feng, L., Hilmas, G., Fahrenholtz, W. (2022). Quantitative inspection of grain-scale chemical inhomogeneities in high-entropy {AlB}2-type transition metal diborides. JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 105(11), 6910-6923 [10.1111/jace.18619].

Quantitative inspection of grain-scale chemical inhomogeneities in high-entropy {AlB}2-type transition metal diborides

M. Gaboardi;
2022-01-01

Abstract

The chemical homogeneity of single phase high-entropy AlB2-type Ti-Zr-Hf-Ta-TM diboride (TM = Cr, V, W, Mo), as well as Ti-Zr-I if-Mo-W solid solutions was investigated using a new method based on the comparative examination of information provided by electron microscopy and structural parameters. The study of the densification behavior was accomplished, and strong correlations among densification rate-grain coarsening-long range chemical randomization were found. High-resolution synchrotron radiation X-ray diffraction supported by grain-scale chemical analyses by energy dispersive spectroscopy indicated that homogenization of the metals was incomplete, with direct impact on the refined lattice mu-strain. The chemical inhomogeneity was on the same length scale as the grain size, which makes it hardly detectable by typical chemical mapping using energy dispersive spectroscopy. Based on this analysis, the resulting mu-strain broadening is not an intrinsic property of the material, but strongly depends on its processing history.
2022
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore IMAT-01/A - Scienza e tecnologia dei materiali
Settore CHEM-03/A - Chimica generale e inorganica
Settore PHYS-03/A - Fisica sperimentale della materia e applicazioni
English
Con Impact Factor ISI
EDS
high-entropy ceramics
lattice mu-strain
Rietveld refinement
SEM
synchrotron radiation XRD
Monteverde, F., Saraga, F., Gaboardi, M., Feng, L., Hilmas, G., Fahrenholtz, W. (2022). Quantitative inspection of grain-scale chemical inhomogeneities in high-entropy {AlB}2-type transition metal diborides. JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 105(11), 6910-6923 [10.1111/jace.18619].
Monteverde, F; Saraga, F; Gaboardi, M; Feng, L; Hilmas, G; Fahrenholtz, W
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/394769
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