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首页> 外文期刊>Advances in Physics: X >Recent advances in identifying the structure of liquid and glassy oxide and chalcogenide materials under extreme conditions: a joint approach using diffraction and atomistic simulation
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Recent advances in identifying the structure of liquid and glassy oxide and chalcogenide materials under extreme conditions: a joint approach using diffraction and atomistic simulation

机译:在极端条件下识别液态,玻璃态氧化物和硫族化物材料结构的最新进展:使用衍射和原子模拟的联合方法

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摘要

The advent of advanced instrumentation and measurement protocols makes it increasingly feasible to use X-ray and neutron diffraction methods to investigate the structure of liquid and glassy materials under extreme conditions of high-temperatures and/or high-pressures. In particular, a combination of diffraction and modern simulation techniques is allowing for an understanding of the structure of these disordered materials at both the atomistic and electronic levels. In this article, we highlight some of the recent work in solving the structure of liquid and glassy oxide and chalcogenide materials under extreme conditions. We consider, in turn, the use of aerodynamic levitation with laser heating to investigate the structure of high-temperature oxide melts and to fabricate novel glassy materials by container-less processing; the use of high-pressure methods in the gigapascal regime to investigate the mechanisms of network collapse for glassy network structures; and the simultaneous application of high-pressures and high-temperatures to explore the structure of disordered materials. Finally, we consider the use of other quantum-beam diffraction-based techniques for probing the order hidden in the correlation functions that describe the structure of disordered matter.
机译:先进的仪器和测量规程的出现使得使用X射线和中子衍射法研究在高温和/或高压的极端条件下液体和玻璃状材料的结构变得越来越可行。尤其是,将衍射技术与现代模拟技术相结合,可以在原子和电子水平上理解这些无序材料的结构。在本文中,我们重点介绍了在极端条件下解决液态,玻璃态氧化物和硫族化物材料结构的最新工作。反过来,我们考虑将空气悬浮与激光加热结合使用,以研究高温氧化物熔体的结构,并通过无容器加工来制造新型玻璃状材料。使用千兆帕斯卡体系中的高压方法研究玻璃状网络结构的网络塌陷机制;并同时应用高压和高温来探索无序材料的结构。最后,我们考虑使用其他基于量子束衍射的技术来探测隐藏在描述无序物质结构的相关函数中的顺序。

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