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通过冲击压缩合成准晶体

Quasicrystal synthesis by shock compression.

作者信息

Hu Jinping, Asimow Paul D, Ma Chi, Steinhardt Paul J, Bindi Luca

机构信息

Division of Geological and Planetary Sciences, California Institute of Technology, Pasadena, USA.

Department of Physics, Princeton University, Princeton, USA.

出版信息

Commun Chem. 2024 Oct 10;7(1):232. doi: 10.1038/s42004-024-01319-8.

Abstract

Quasicrystals are of interest because of their unique nonperiodic structures and physical properties. Motivated by naturally occurring icosahedral AlCuFe- and decagonal AlNiFe-phases hosted in a shocked meteorite, different laboratories have undertaken a series of shock recovery experiments to understand their formation mechanism. Shock experiments generate a complex series of processes and conditions, including a near-instantaneous excursion to high pressure and high temperature, large shear stresses, local melting, rapid decompression, fast quenching and post-shock annealing. This highly dynamic scenario offers a very useful but imperfect tool for exploring the stability of novel alloys, such as quasicrystals. So far, all the shock-synthesized quasicrystals differ considerably in composition from any thermodynamically stable or metastable quasicrystals synthesized by metallurgical techniques at low pressure, leaving plenty of questions to be answered about their formation conditions and their nucleation and growth mechanisms occurring during shock experiments. In this Perspective, we summarize the previous studies of shock-synthesized quasicrystals and discuss the advantages and difficulties caused by the experimental complexity. We also propose a few directions for future experiments to better control the shock conditions and understand the properties of quasicrystals.

摘要

准晶体因其独特的非周期性结构和物理性质而备受关注。受存在于一颗撞击陨石中的天然二十面体AlCuFe相和十面体AlNiFe相的启发,不同实验室开展了一系列冲击恢复实验,以了解它们的形成机制。冲击实验会产生一系列复杂的过程和条件,包括近乎瞬间达到高压和高温、大剪切应力、局部熔化、快速减压、快速淬火以及冲击后退火。这种高度动态的情况为探索新型合金(如准晶体)的稳定性提供了一个非常有用但并不完美的工具。到目前为止,所有通过冲击合成的准晶体在成分上与通过冶金技术在低压下合成的任何热力学稳定或亚稳准晶体都有很大差异,关于它们在冲击实验中的形成条件以及成核和生长机制仍有许多问题有待解答。在这篇综述中,我们总结了此前关于冲击合成准晶体的研究,并讨论了实验复杂性所带来的优势和困难。我们还提出了一些未来实验的方向,以便更好地控制冲击条件并了解准晶体的性质。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e557/11467205/c5a7111e455e/42004_2024_1319_Fig1_HTML.jpg

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