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电子亏损 Sr3Au8Sn3 中由化学键优化驱动的无序-有序结构转变。

Disorder-order structural transformation in electron-poor Sr3Au8Sn3 driven by chemical bonding optimization.

机构信息

Department of Chemistry, Iowa State University, Ames, Iowa 50011, USA.

出版信息

Inorg Chem. 2013 Jun 3;52(11):6603-9. doi: 10.1021/ic400626x. Epub 2013 May 16.

DOI:10.1021/ic400626x
PMID:23679918
Abstract

Sr3Au8Sn3 was synthesized through fusion of a stoichiometric amount of pure metals at 800 °C and annealing treatments at lower temperatures. Single-crystal X-ray diffraction analyses revealed that Sr3Au8Sn3 has a La3Al11-type Immm structure (a = 4.6767(8) Å, b = 9.646(2) Å, c = 14.170(2) Å, Z = 2) if annealed at 550 °C and above but a Ca3Au8Ge3-type structure (Pnnm, a = 9.6082(8) Å, b = 14.171(1) Å, c = 4.6719(4) Å, Z = 2) if annealed at 400 °C. The transition occurs at about 454 °C according to DTA data. Both structures feature columns of Sr-centered pentagonal and hexagonal prisms of Au and Sn stacked along the respective longest axial directions, but different "colorings" of the polyhedra are evident. In the high-temperature phase (Immm) all sites shared between the two prisms adopt 50:50 mixtures of Au/Sn atoms, whereas in the low-temperature phase (Pnnm) Au or Sn are completely ordered. A Klassengleiche group-subgroup relationship was established between these two structures. LMTO-ASA calculations reveal that ΔE for the disorder-to-order transformation on cooling is driven mainly by optimization of the Au-Au and Au-Sn bond populations around the former mixed Au/Sn sites, particularly those with extremely short bonds at the higher temperature. These gains also overcome the smaller effect of ordering on the entropy decrease.

摘要

Sr3Au8Sn3 是通过将化学计量的纯金属在 800°C 下融合并在较低温度下进行退火处理而合成的。单晶 X 射线衍射分析表明,Sr3Au8Sn3 在 550°C 及以上退火时具有 La3Al11 型 Immm 结构(a = 4.6767(8) Å, b = 9.646(2) Å, c = 14.170(2) Å, Z = 2),但在 400°C 退火时具有 Ca3Au8Ge3 型结构(Pnnm, a = 9.6082(8) Å, b = 14.171(1) Å, c = 4.6719(4) Å, Z = 2)。根据 DTA 数据,该转变发生在大约 454°C。两种结构都具有沿各自最长轴向堆叠的 Sr 中心五边形和六边形棱柱的 Au 和 Sn 柱,但是多面体的“着色”明显不同。在高温相(Immm)中,两个棱柱之间共享的所有位置都采用 Au/Sn 原子的 50:50 混合物,而在低温相(Pnnm)中,Au 或 Sn 是完全有序的。在这两种结构之间建立了 Klassengleiche 组-子群关系。LMTO-ASA 计算表明,冷却时无序到有序转变的 ΔE 主要是由优化 Au-Au 和 Au-Sn 键密度驱动的,特别是在较高温度下,那些具有极短键的混合 Au/Sn 位置。这些收益还克服了有序对熵减少的较小影响。

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