| Literature DB >> 26049507 |
Elissaios Stavrou1, Joseph M Zaug2, Sorin Bastea2, Jonathan C Crowhurst2, Alexander F Goncharov1, Harry B Radousky2, Michael R Armstrong2, Sarah K Roberts2, Jonathan W Plaue2.
Abstract
Pressure dependent angle-dispersive x-ray powder diffraction measurements of alpha-phase aluminum trifluoride (α-AlF3) and separately, aluminum triiodide (AlI3) were conducted using a diamond-anvil cell. Results at 295 K extend to 50 GPa. The equations of state of AlF3 and AlI3 were determined through refinements of collected x-ray diffraction patterns. The respective bulk moduli and corresponding pressure derivatives are reported for multiple orders of the Birch-Murnaghan (B-M), finite-strain (F-f), and higher pressure finite-strain (G-g) EOS analysis models. Aluminum trifluoride exhibits an apparent isostructural phase transition at approximately 12 GPa. Aluminum triiodide also undergoes a second-order atomic rearrangement: applied stress transformed a monoclinically distorted face centered cubic (fcc) structure into a standard fcc structural arrangement of iodine atoms. Results from semi-empirical thermochemical computations of energetic materials formulated with fluorine containing reactants were obtained with the aim of predicting the yield of halogenated products.Entities:
Year: 2015 PMID: 26049507 DOI: 10.1063/1.4921896
Source DB: PubMed Journal: J Chem Phys ISSN: 0021-9606 Impact factor: 3.488