纳米金刚石和中生代金刚石中的五边形对称性。

IF 2.8 2区 化学 Q3 CHEMISTRY, PHYSICAL
The Journal of Physical Chemistry A Pub Date : 2024-10-10 Epub Date: 2024-09-30 DOI:10.1021/acs.jpca.4c02792
Iu A Melchakova, G T Oyeniyi, D R Engelgardt, S P Polyutov, P V Avramov
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引用次数: 0

摘要

本综述首次全面概述了具有五边形对称性的奇异 sp3 晶体非周期性环状多孪晶纳米(10-100 纳米)和中晶(最大 1 毫米)金刚石颗粒(MTPs)的结构和性质。它跨越了他们独立的实验发现(1963 年、1964 年、1972 年和 1983 年)和理论结构见解(1993 年),以及最近的进展。本综述的重点是多个立方金刚石碎片通过 [111] 面融合形成的高对称性 MTP。单个碎片的 sp3 金刚石晶格提供了大量的 MTP 种类。研究表明,这些粒子是具有有限尺寸和旋转对称性的非周期性晶体固体的一个特例,导致平移不变性的破坏。对 MTPs 晶格的详细数学分析突出了中心核在决定这些结构的对称性和有效尺寸方面的关键作用。研究从结构和动力学两方面探讨了五边形金刚石颗粒的形成机制,揭示了胚种(低富勒烯、聚六环[5.5.1.12,6.18,12.03,11.05,9]十五烷(C15)和聚七环[5.5.1.12,7.19,14.03,13.06,11]十八烷(C18))在决定 MTP 对称性和结构方面的主要作用。研究表明,多孪晶金刚石的有效尺寸受到完美五边形和四面体二面角不匹配造成的结构应力的限制。讨论了多孪晶金刚石的非凡机械和电子特性,强调了立方金刚石碎片之间的六边形界面可能决定了其非凡的超硬和量子特性。多孪晶金刚石的 X 射线衍射光谱显示出清晰的五边形图案,其中心五折轴为单轴(金刚石十面体或十二面体)或十轴(金刚石二十面体)。对实验结构数据和不同理论水平的模拟进行的对比分析表明,理论模型与晶格完全吻合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Pentagonal Symmetry in Aperiodic Cyclic Multiply Twinned Nano- and Mesodiamonds.

This Review provides the first comprehensive overview of the structure and properties of exotic sp3-crystalline aperiodic cyclic multiply twinned nano- (10-100 nm) and meso- (up to 1 mm) diamond particles (MTPs) exhibiting pentagonal symmetry. It spans their independent experimental discoveries (1963, 1964, 1972, and 1983) and theoretical structural insights (1993) to recent advancements. The Review focuses on high-symmetry MTPs formed by the fusion of multiple cubic diamond fragments through [111] facets. The sp3 diamond lattice of individual fragments offers a vast range of MTP varieties. These particles are shown to be a special case of aperiodic crystalline solids with limited dimensions and rotational symmetry, leading to a breakdown of translational invariance. Detailed mathematical analysis of the MTPs' lattices highlights the crucial role of central cores in determining the symmetry and effective dimensions of these structures. Both structural and kinetic aspects of the formation mechanisms of pentagonal diamond particles are considered, revealing the main role of embryo seeds (low fullerenes, polyhexacyclo[5.5.1.12,6.18,12.03,11.05,9]pentadecane (C15), and polyheptacyclo[5.5.1.12,7.19,14.03,13.06,11]octadecane (C18)) in determining the MTPs' symmetry and structure. The effective dimensions of multiply twinned diamonds are shown to be limited by structural stress caused by the mismatch of perfect pentagonal and tetrahedral dihedral angles. The extraordinary mechanical and electronic properties of multiply twinned diamonds are discussed, highlighting that hexagonal interfaces between cubic diamond fragments may determine exceptional ultrahard and quantum characteristics. The MTP X-ray diffraction spectra reveal clear pentagonal patterns with single (diamond decahedrons or dodecahedrons) or ten (diamond icosahedra) central 5-fold axes. A comparative analysis of experimental structural data and simulations at different theoretical levels demonstrates a perfect correspondence of theoretical models with crystalline lattices.

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来源期刊
The Journal of Physical Chemistry A
The Journal of Physical Chemistry A 化学-物理:原子、分子和化学物理
CiteScore
5.20
自引率
10.30%
发文量
922
审稿时长
1.3 months
期刊介绍: The Journal of Physical Chemistry A is devoted to reporting new and original experimental and theoretical basic research of interest to physical chemists, biophysical chemists, and chemical physicists.
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