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首页> 外文期刊>The Journal of Chemical Physics >Polymorphism and thermodynamic ground state of silver fulminate studied from van der Waals density functional calculations
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Polymorphism and thermodynamic ground state of silver fulminate studied from van der Waals density functional calculations

机译:从范德华斯密度泛函计算研究富铝酸银的多态性和热力学基态

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Silver fulminate (AgCNO) is a primary explosive, which exists in two polymorphic phases, namely, orthorhombic (Cmcm) and trigonal (R3~-) 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 derWaals 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 R3~- phases denoted as α- and β-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 α, β 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 β-form of AgCNO.
机译:高铝酸银(AgCNO)是一种主要炸药,在环境条件下以正交晶(Cmcm)和三角晶(R3〜-)两种形态存在。在本研究中,我们使用基于密度泛函理论(DFT)的平面波伪势方法研究了压力和温度对多晶型物相对相稳定性的影响。范德华相互作用在预测相稳定性方面起着重要作用,与标准DFT功能相比,它们可以通过半经验色散校正方法有效地捕获。根据我们使用DFT-D2方法计算的总能量,在研究的压力和温度范围内,Cmcm结构是优选的热力学平衡相。迄今为止,Cmcm和R3〜-相分别表示为AgCNO的α-和β-形式。此外,使用DFT功能可以看到压力诱导的多态相变,而使用DFT-D2方法则没有观察到。研究了两个多晶相的状态方程和可压缩性。电子结构和光学性质是在Tran-Blaha修饰的Becke-Johnson势中使用全势线性化增强平面波方法计算的。计算得出的电子结构表明,α,β相是间接带隙绝缘体,其带隙值分别为3.51和4.43 eV。通过电荷密度图和状态的部分密度分析化学键的性质。从计算的光谱中分析了光学各向异性,电偶极跃迁和对多晶型物的光的光敏性。总的来说,本研究为实验人员避免形成不稳定的β型AgCNO提供了早期指示。

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