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Synthesis of a mixed-valent tin nitride and considerations of its possible crystal structures

机译:混合价氮化锡的合成及其可能晶体结构的考虑

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摘要

Recent advances in theoretical structure prediction methods and high-throughput computational techniques are revolutionizing experimental discovery of the thermodynamically stable inorganic materials. Metastable materials represent a new frontier for these studies, since even simple binary non-ground state compounds of common elements may be awaiting discovery. However, there are significant research challenges related to non-equilibrium thin film synthesis and crystal structure predictions, such as small strained crystals in the experimental samples and energy minimization based theoretical algorithms. Here, we report on experimental synthesis and characterization, as well as theoretical first-principles calculations of a previously unreported mixed-valent binary tin nitride. Thin film experiments indicate that this novel material is N-deficient SnN with tin in the mixed ii/iv valence state and a small low-symmetry unit cell. Theoretical calculations suggest that the most likely crystal structure has the space group 2 (SG2) related to the distorted delafossite (SG166), which is nearly 0.1 eV/atom above the ground state SnN polymorph. This observation is rationalized by the structural similarity of the SnN distorted delafossite to the chemically related Sn3N4 spinel compound, which provides a fresh scientific insight into the reasons for growth of polymorphs of metastable materials. In addition to reporting on the discovery of the simple binary SnN compound, this paper illustrates a possible way of combining a wide range of advanced characterization techniques with the first-principle property calculation methods, to elucidate the most likely crystal structure of the previously unreported metastable materials.
机译:理论结构预测方法和高通量计算技术的最新进展正在彻底改变热力学稳定的无机材料的实验发现。亚稳材料代表了这些研究的新领域,因为即使是常见元素的简单二元非基态化合物也有待发现。然而,与非平衡薄膜合成和晶体结构预测相关的研究挑战很大,例如实验样品中的小应变晶体和基于能量最小化的理论算法。在这里,我们报告有关实验合成和表征,以及以前未报告的混合价二元氮化锡的理论第一原理计算。薄膜实验表明,这种新颖的材料是N缺陷的SnN,具有ii / iv混合价态的锡和小的低对称性晶胞。理论计算表明,最可能的晶体结构具有与扭曲的铜铁矿(SG166)有关的空间群2(SG2),该空间群比基态SnN多晶型物高近0.1 eV /原子。 SnN扭曲的铜铁矿与化学相关的Sn3N4尖晶石化合物的结构相似性使这一观察合理化,这为亚稳材料多晶型物生长的原因提供了新的科学见解。除了报告发现简单的二元SnN化合物外,本文还说明了将多种先进的表征技术与第一性原理计算方法相结合的一种可能方法,以阐明先前未报道的亚稳态的最可能的晶体结构。材料。

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