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Amorphous silica-like carbon dioxide

Academic Article
Publication Date:
2006
abstract:
Among the group IV elements, only carbon forms stable double bonds with oxygen at ambient conditions. At variance with silica and germania, the non-molecular single-bonded crystalline form of carbon dioxide, phase V, only exists at high pressure [1-9]. The amorphous forms of silica (a-SiO2) and germania (a-GeO2) are well known at ambient conditions; however, the amorphous, nonmolecular formof CO2 has so far been described only as a result of first-principles simulations [9]. Here we report the synthesis of an amorphous, silica-like form of carbon dioxide, a-CO2, which we call 'a-carbonia'. The compression of the molecular phase III of CO2 between 40 and 48 GPa at room temperature initiated the transformation to the non-molecular amorphous phase. Infrared spectra measured at temperatures up to 680 K show the progressive formation of C-O single bonds and the simultaneous disappearance of all molecular signatures. Furthermore, state-ofthe- art Raman and synchrotron X-ray diffraction measurements on temperature-quenched samples confirm the amorphous character of the material. Comparison with vibrational and diffraction data for a-SiO2 and a-GeO2, as well as with the structure factor calculated for the a-CO2 sample obtained by first-principles molecular dynamics9, shows that a-CO2 is structurally homologous to the other group IV dioxide glasses. We therefore conclude that the class of archetypal networkforming disordered systems, including a-SiO2, a-GeO2 and water, must be extended to include a-CO2.
Iris type:
01.01 Articolo in rivista
Keywords:
amorphous silica-like CO2; high pressure; synchrotron x-ray diffraction; optical spectroscopy; ab initio computer simulations
List of contributors:
Scandolo, Sandro; Ruocco, Giancarlo; Bini, Roberto; Santoro, Mario; Gorelli, FEDERICO AIACE
Authors of the University:
GORELLI FEDERICO AIACE
SANTORO MARIO
Handle:
https://iris.cnr.it/handle/20.500.14243/407305
Published in:
NATURE (LOND.)
Journal
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