论文标题

公制驱动搜索结构稳定的无机化合物

Metric-driven search for structurally stable inorganic compounds

论文作者

Villarreal, R., Singh, P., Arroyave, R.

论文摘要

我们报告了一个简便的“度量”,用于识别结构和动态(正定义的声子结构)稳定的无机化合物。该度量考虑了使用第一原理密度功能理论计算出的晶体化合物中局部子结构内的电荷不平衡。为了举例说明,我们选择了基于碳的硝酸盐,因为它提供了大量的结构稳定和不稳定的相。我们展示了与Wyckoff对称性有关的局部结构信息如何独特地识别四个新的碳氮阶段。该指标预测三个新的结构稳定阶段为4(c)$:$ 3(n)化学计量,即c $ _ {4} $ n $ _ {3} $,通过直接响声计算进一步确认。结构稳定的相也满足热力学稳定性和机械稳定性标准。新阶段具有非凡的机械性能,类似于钻石,并且显示出绝缘的带隙,从最佳的1.45 eV(最佳)到5.5 eV(大间隙)。详细讨论的PM(1)-c $ _ {4} $ n $ _ {3} $的结构,电子和光学特性表明在光电和光伏技术中可能应用。指标是设计的方式,可用于预测具有三维键合网络的任何材料的稳定性。该指标还能够预测具有100 $ \%$精度的其他氮化物多晶型物的结构稳定性。我们认为,提出的“度量”将通过快速过滤动态稳定的相位而没有昂贵的密度功能理论计算来加速对未知和未探索的无机化合物的搜索。

We report a facile `metric' for the identification of structurally and dynamically (positive definite phonon structure) stable inorganic compounds. The metric considers charge-imbalance within the local substructures in crystalline compounds calculated using first-principles density-functional theory. To exemplify, we chose carbon-based nitrides as it provides a large pool of structurally stable and unstable phases. We showcase how local structural information related to Wyckoff symmetry uniquely identifies four new carbon-nitride phases. The metric predicts three new structurally stable phases of 4 (C)$:$3 (N) stoichiometry, i.e., C$_{4}$N$_{3}$, which is further confirmed by direct phonon calculations. The structurally stable phases also satisfy the thermodynamic stability and mechanical stability criteria. New phases possess extraordinary mechanical properties, similar to diamond, and show insulating bandgap ranging from optimal, 1.45 eV (optimal) to 5.5 eV (large gap). The structural, electronic, and optical properties of Pm(1)-C$_{4}$N$_{3}$, discussed in detail, indicate possible application in optoelectronic and photovoltaic technologies. The way metric is design, it can be used to predict stability of any material with three-dimensional bonding network. The metric was also able to predict structural stability of other nitride polymorphs with 100$\%$ accuracy. We believe that the proposed `Metric' will accelerate the search of unknown and unexplored inorganic compounds by quick filtering of dynamically stable phases without expensive density-functional theory calculations.

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