Spectroscopic study of the product of thermal transformation of chrysotile-asbestos containing materials (ACM)
Articolo
Data di Pubblicazione:
2010
Abstract:
In Italy, reclamation of asbestos-containing materials (ACM) such as friable asbestos and cement-asbestos is accomplished
by their removal, packaging and dumping in controlled landfills. An alternative way to landfill disposal is the thermal transformation
of ACM and recycling of the transformation product as secondary raw material. The aim of this work is to integrate preliminary X-ray
diffraction and microscopic investigations on the secondary raw material described earlier with a detailed study on the product of
transformation at 1200 OC of friable chrysotile-asbestos and cement-asbestos, using (micro)Raman, (micro)FTIR, 57Fe Mo¨ssbauer
and XANES at the Fe K-edge. Micro-Raman spectra reveal that the absorption bands generated by chrysotile are no longer present in
the high-temperature products, and this is further confirmed by micro-FTIR results. In the core of the former fibres of loose chrysotile
asbestos, the newly formed phases are olivine and enstatite, whereas the product of transformation of cement-asbestos is composed of
olivine together with several other phases such as hematite and (Ca, Mg, Al)-silicates. The Mo¨ssbauer absorption spectra of raw
chrysotile reveal that iron is contained in a paramagnetic phase (40 %) as well as in accessory magnetite (60 %). The paramagnetic
contribution, attributed to chrysotile, is represented by Fe2þ (10 % of Fetot) and Fe3þ (30 % of Fetot), both octahedrally coordinated.
The spectrum of thermally treated chrysotile clearly shows that the magnetic phases are now oxidized magnetite/maghemite and
hematite, and the paramagnetic contribution is quite unaltered, though likely due to the newly formed olivine. The spectrum of
untreated cement-asbestos has no evidence of accessory magnetic phases and is made of Fe2þ (15 % of Fetot) and Fe3þ (85 % of Fetot),
both octahedrally coordinated. In the thermally treated sample all iron is oxidized, but a phase transition occurred, because Fe3þ is
tetrahedrally coordinated. Also XANES spectra show that in all samples the dominant iron oxidation state is 3þ. XANES data on
standard chrysotile are compatible with the possible presence of magnetite. In the high-temperature product of cement-asbestos, the
high intensity of the pre-edge peak is comparable with that of the reference compound Fe-silicalite, with ferric iron hosted in the
framework. This result indicates that in this product ferric iron is likely hosted in a crystalline phase in four-fold coordination, in
agreement with Mo¨ssbauer spectroscopy results. Such crystalline phase could be Fe-bearing akermanite-gehlenite.
Tipologia CRIS:
01.01 Articolo in rivista
Keywords:
asbestos; KR-AS; thermal transformation; spectroscopy; iron coordination
Elenco autori:
Andreozzi, GIOVANNI BATTISTA
Link alla scheda completa:
Pubblicato in: