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氮化物基材料的高压化学

High-pressure chemistry of nitride-based materials.

作者信息

Horvath-Bordon Elisabeta, Riedel Ralf, Zerr Andreas, McMillan Paul F, Auffermann Gudrun, Prots Yurii, Bronger Welf, Kniep Rüdiger, Kroll Peter

机构信息

Disperse Feststoffe, Material- und Geowissenschaften, Technische Universität Darmstadt, Petersenstrasse 23, 64287 Darmstadt, Germany.

出版信息

Chem Soc Rev. 2006 Oct;35(10):987-1014. doi: 10.1039/b517778m. Epub 2006 Aug 10.

Abstract

Besides temperature at one atmosphere, the applied pressure is another important parameter for influencing and controlling reaction pathways and final reaction products. This is relevant not only for the genesis of natural minerals, but also for synthetic chemical products and technological materials. The present critical review (316 references) highlights recent developments that utilise high pressures and high-temperatures for the synthesis of new materials with unique properties, such as high hardness, or interesting magnetic or optoelectronic features. Novel metal nitrides, oxonitrides as well as the new class of nitride-diazenide compounds, all formed under high-pressure conditions, are highlighted. Pure oxides and carbides are not considered here. Moreover, syntheses under high-pressure conditions require special equipment and preparation techniques, completely different from those used for conventional synthetic approaches at ambient pressure. Therefore, we also summarize the high-pressure techniques used for the synthesis of new materials on a laboratory scale. In particular, our attention is focused on reactive gas pressure devices with pressures between 1.2 and 600 MPa, multi-anvil apparatus at P < 25 GPa and the diamond anvil cell, which allows work at pressures of 100 GPa and higher. For example, some of these techniques have been successfully upgraded to an industrial scale for the synthesis of diamond and cubic boron nitride.

摘要

除了一个大气压下的温度外,外加压力是影响和控制反应路径及最终反应产物的另一个重要参数。这不仅与天然矿物的形成有关,也与合成化学产品和技术材料有关。本综述(316篇参考文献)重点介绍了利用高温高压合成具有独特性能(如高硬度、有趣的磁性或光电特性)新材料的最新进展。重点介绍了在高压条件下形成的新型金属氮化物、氧氮化物以及新型氮化物-重氮化物化合物。这里不考虑纯氧化物和碳化物。此外,高压条件下的合成需要特殊的设备和制备技术,这与常压下传统合成方法所使用的设备和技术完全不同。因此,我们还总结了实验室规模合成新材料所使用的高压技术。特别是,我们重点关注压力在1.2至600 MPa之间的反应气体压力装置、压力小于25 GPa的多砧装置以及金刚石对顶砧槽,后者可在100 GPa及更高压力下工作。例如,其中一些技术已成功升级到工业规模用于合成金刚石和立方氮化硼。

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