4.7 Article

Polymorphism and thermodynamic ground state of silver fulminate studied from van der Waals density functional calculations

Journal

JOURNAL OF CHEMICAL PHYSICS
Volume 140, Issue 22, Pages -

Publisher

AMER INST PHYSICS
DOI: 10.1063/1.4882055

Keywords

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Funding

  1. Defence Research and Development Organisation (DRDO) through ACRHEM [DRDO/02/0201/2011/00060: ACREHM-PHASE-II]

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Silver fulminate (AgCNO) is a primary explosive, which exists in two polymorphic phases, namely, orthorhombic (Cmcm) and trigonal (R (3) over bar) forms at ambient conditions. In the present study, we have investigated the effect of pressure and temperature on relative phase stability of the polymorphs using planewave pseudopotential approaches based on Density Functional Theory (DFT). van der Waals interactions play a significant role in predicting the phase stability and they can be effectively captured by semi-empirical dispersion correction methods in contrast to standard DFT functionals. Based on our total energy calculations using DFT-D2 method, the Cmcm structure is found to be the preferred thermodynamic equilibrium phase under studied pressure and temperature range. Hitherto Cmcm and R (3) over bar phases denoted as alpha- and beta-forms of AgCNO, respectively. Also a pressure induced polymorphic phase transition is seen using DFT functionals and the same was not observed with DFT-D2 method. The equation of state and compressibility of both polymorphic phases were investigated. Electronic structure and optical properties were calculated using full potential linearized augmented plane wave method within the Tran-Blaha modified Becke-Johnson potential. The calculated electronic structure shows that alpha, beta phases are indirect bandgap insulators with a bandgap values of 3.51 and 4.43 eV, respectively. The nature of chemical bonding is analyzed through the charge density plots and partial density of states. Optical anisotropy, electric-dipole transitions, and photo sensitivity to light of the polymorphs are analyzed from the calculated optical spectra. Overall, the present study provides an early indication to experimentalists to avoid the formation of unstable beta-form of AgCNO. (C) 2014 AIP Publishing LLC.

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