论文标题
抗植物素A3BX(TI3TLN,NI3SNN和CO3ALC)阶段的动力稳定性,振动和光学特性:第一原理研究
Dynamical stability, Vibrational and optical properties of anti-perovskite A3BX (Ti3TlN, Ni3SnN and Co3AlC) phases: a first principles study
论文作者
论文摘要
我们已经研究了各种物理特性,包括声子分散,光学参数,光学常数,费米表面,穆里肯键种群,理论上的Vickers Vickers the Anti-perovskite A3BX阶段的损伤耐受性,这是第一次使用基于第一原理方法的密度功能理论(DFT)方法。最初,我们总共评估了九个A3BX相,发现只有三个相(TI3TLN,NI3SNN和CO3ALC)是基于对计算的弹性常数和声子分散剂以及状态状态密度的计算弹性常数和声子分散的分析而在机械上和动态稳定的。我们重新审视了化合物的结构,弹性和电子特性,以判断我们计算的可靠性。在费米水平上没有带隙的缺乏表征所考虑的阶段本质上是金属的。 PUGH比率,泊松比和库奇因子的值预测了这些化合物中与强金属键相关的延性性质。还使用热力学特性(例如自由能,焓,熵,热容量和Debye温度)进行了对相位的高温可行性研究。估计化合物的维克硬度估计约为4 GPa,与许多众所周知的最大阶段相当,表明它们的合理硬度且易于加工性质。对于正在研究的阶段,静态折射率N(零)已在8.0左右,吸引了设计光电设备的潜在候选者。在0至14.8 eV的能量范围内,TI3TLN化合物的反射率在44%以上,表明该材料作为涂层剂具有巨大的诺言,可以避免太阳加热。
We have investigated various physical properties including phonon dispersion, thermodynamic parameters, optical constants, Fermi surface, Mulliken bond population, theoretical Vickers hardness and damage tolerance of anti-perovskite A3BX phases for the first time by employing density functional theory (DFT) methodology based on first principles method. Initially we assessed nine A3BX phases in total and found that only three phases (Ti3TlN, Ni3SnN and Co3AlC) are mechanically and dynamically stable based on analysis of computed elastic constants and phonon dispersion along with phonon density of states. We revisited the structural, elastic and electronic properties of the compounds to judge the reliability of our calculations. Absence of band gap at the Fermi level characterizes the phases under consideration as metallic in nature. The values of Pugh ratio, Poisson ratio and Cauchy factor have predicted the ductile nature associated with strong metallic bonding in these compounds. High temperature feasibility study of the phases has also been performed using the thermodynamic properties, such as the free energy, enthalpy, entropy, heat capacity and Debye temperature. The Vickers hardness of the compounds are estimated to be around 4 GPa which is comparable to many well-known MAX phases, indicating their reasonable hardness and easily machinable nature. The static refractive index n(zero) has been found around 8.0 for the phases under study that appeals as potential candidate to design optoelectronics appliances. The reflectivity is found above 44 percent for the Ti3TlN compound in the energy range of 0 to 14.8 eV demonstrating that this material holds significant promise as a coating agent to avoid solar heating.