Study of the Orthorhombic Polymeric Phase of C60Under High Pressure Using Synchrotron X-Ray Powder Diffraction
R. Papoular, Vladimir Dmitriev, Valery A. Davydov, A. V. Rakhmanina, H. Allouchi, V. Agafonov
Abstract
R. Papoular, Vladimir Dmitriev, Valery A. Davydov, A. V. Rakhmanina, H. Allouchi, V. Agafonov
Abstract
As an extension of our previously published work (2007) on the orthorhombic phase of polymeric C60, high-resolution powder diffraction experiments under high pressure were recently carried out at the ESRF/SNBL/BM01A beamline. The acquisition times were very short, of the order of 10 minutes. In contrast to our first laboratory experiment, which involved much longer exposures (50–150 hours), no photo-induced transition to a crystalline state of lower symmetry could be observed up to 6 GPa. The obtained powder diffractograms are all consistent with an orthorhombic unit cell. A Birch-Murnaghan equation of state is fitted to the resulting pressure-volume data for the orthorhombic phase.
OpenAlex reports 2 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
As an extension of our previously published work (2007) on the orthorhombic phase of polymeric C60, high-resolution powder diffraction experiments under high pressure were recently carried out at the ESRF/SNBL/BM01A beamline. The acquisition times were very short, of the order of 10 minutes. In contrast to our first laboratory experiment, which involved much longer exposures (50–150 hours), no photo-induced transition to a crystalline state of lower symmetry could be observed up to 6 GPa. The obtained powder diffractograms are all consistent with an orthorhombic unit cell. A Birch-Murnaghan equation of state is fitted to the resulting pressure-volume data for the orthorhombic phase.
Key concepts: Orthorhombic crystal system, Powder diffraction, Beamline, Diffraction, Synchrotron, Materials science, Phase (matter), Phase transition