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压缩柯石英的多型相变机制。

Polymorphic phase transition mechanism of compressed coesite.

机构信息

1] Center for High Pressure Science and Technology Advanced Research, Shanghai 201203, China [2] School of Physics, Astronomy and Computational Sciences, George Mason University, Fairfax, Virginia 22030, USA [3] Geophysical Laboratory, Carnegie Institution of Washington, Washington, District Of Columbia 20015, USA.

Geophysical Laboratory, Carnegie Institution of Washington, Washington, District Of Columbia 20015, USA.

出版信息

Nat Commun. 2015 Mar 20;6:6630. doi: 10.1038/ncomms7630.

Abstract

Silicon dioxide is one of the most abundant natural compounds. Polymorphs of SiO₂ and their phase transitions have long been a focus of great interest and intense theoretical and experimental pursuits. Here, compressing single-crystal coesite SiO₂ under hydrostatic pressures of 26-53 GPa at room temperature, we discover a new polymorphic phase transition mechanism of coesite to post-stishovite, by means of single-crystal synchrotron X-ray diffraction experiment and first-principles computational modelling. The transition features the formation of multiple previously unknown triclinic phases of SiO₂ on the transition pathway as structural intermediates. Coexistence of the low-symmetry phases results in extensive splitting of the original coesite X-ray diffraction peaks that appear as dramatic peak broadening and weakening, resembling an amorphous material. This work sheds light on the long-debated pressure-induced amorphization phenomenon of SiO₂, but also provides new insights into the densification mechanism of tetrahedrally bonded structures common in nature.

摘要

二氧化硅是最丰富的天然化合物之一。SiO₂的多晶型及其相转变一直是人们关注的焦点,也是理论和实验研究的热点。在这里,我们在室温下对单晶柯石英 SiO₂进行了 26-53GPa 的静压压缩实验,通过单晶同步辐射 X 射线衍射实验和第一性原理计算模型,发现了柯石英到后斯石英的一种新的多晶型相转变机制。该转变的特征是在转变途径上形成了多种以前未知的三方晶系 SiO₂相作为结构中间体。低对称性相的共存导致原始柯石英 X 射线衍射峰的广泛分裂,表现为明显的峰宽化和弱化,类似于非晶材料。这项工作不仅为长期以来争论的 SiO₂的压力诱导非晶化现象提供了新的认识,也为自然界中常见的四面体键合结构的致密化机制提供了新的见解。

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