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首页> 外文期刊>Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics >Templating Structural Progessions in Intermetallics: How Chemical Pressure Directs Helix Formation in the Nowotny Chimney Ladders
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Templating Structural Progessions in Intermetallics: How Chemical Pressure Directs Helix Formation in the Nowotny Chimney Ladders

机译:金属间化学中的模板结构progessions:化学压力如何指导俄罗斯烟囱梯子的螺旋形成

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In the structural diversity of intermetallic phases, hierarchies can be perceived relating complex structures to relatively simple parent structures. One example is the Nowotny Chimney Ladder (NCL) series, a family of transition metal main group (T-E) compounds in which the T sublattices trace out helical channels populated by E-atom helices. A sequence of structures emerges from this arrangement because the spacing along the channels of the E atoms smoothly varies relative to that of the T framework, dictated largely by optimization of the valence-electron concentration. In this Communication, we show how this behavior is anticipated and explained by the Density Functional Theory-Chemical Pressure (DFT-CP) schemes of the NCLs. A CP analysis of the RuGa2 parent structure reveals CP quadrupoles on the Ga atoms (telltale signs of soft atomic motion) that arise from overly short Ru Ga contacts along one axis and underutilized spaces in the perpendicular directions. In their placement and orientation, the CP quadrupoles highlight a helical path of facile movement for the Ga atoms that avoids further compression of the already strained Ru Ga contacts. The E atoms of a series of NCLs (in their DFT-optimized geometries) are all found to lie along this helix, with the CP quadrupole character being a persistent feature. In this way, the T sublattice common to the NCLs encodes helical paths by which the E-atom spacing can be varied, creating a mechanism to accommodate electronically driven compositional changes. These results illustrate how CP schemes can be combined with electron-counting rules to create welldefined structural sequences, potentially guiding the discovery of new intermetallic phases.
机译:在金属间相的结构多样性中,可以将层次结构感知到相对简单的父结构的复杂结构。一个例子是NowoTny Chimney Ladder(NCL)系列,一个过渡金属主要组(T-E)化合物,其中T子表格挖出了通过电子原子螺旋填充的螺旋通道。一系列结构从这种布置出现,因为沿着电子原子的通道相对于T框架的间距相对于T框架的间距,很大程度上通过优化价浓度而决定。在这种通信中,我们展示了如何通过NCLS的密度泛函理论 - 化学压力(DFT-CP)方案来预期和解释该行为。 Ruga2父结构的CP分析揭示了GA原子(软原子运动的TellteLe符号)上的CP四轮摩擦,从沿一个轴线和未在垂直方向上的未充分利用空间中产生的。在它们的放置和方向中,CP四轮摩擦突出显示用于GA原子的容易运动的螺旋路径,该GA原子避免了已经应变的Ru GA触点的进一步压缩。一系列NCLS(在其DFT优化的几何形状)的电子原子都发现沿着这个螺旋沿着这个螺旋,CP四极性字符是一个持久的功能。以这种方式,NCLS共有的T子组合编码螺旋路径,通过该路径可以改变电子原子间隔,从而产生一种适应电子驱动的组成变化的机制。这些结果说明了CP方案可以与电子计数规则组合以产生良好的结构序列,可能引导新的金属间相的发现。

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