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Prediction of Stable Iron Nitrides at Ambient and High Pressures with Progressive Formation of New Polynitrogen Species

机译:新多尼氮物质进行环境和高压稳定铁氮化物的预测

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摘要

Nitride materials are of considerable interest due to their fundamental importance and practical applications. However, synthesis of transition metal nitrides often requires extreme conditions, e.g., high temperature and/or high pressure, slowing down the experimental discovery. Using global structure search methods in combination with first principles calculations, we systematically explore the stoichiometric phase space of iron-nitrogen compounds on the nitrogen-rich side at ambient and high pressures up to 100 GPa. Diverse stoichiometries in the Fe-N system are found to emerge in the phase diagram at high pressures. Significantly, FeN4 is found to be stable already at ambient pressure. It undergoes a polymerization near 20 GPa which results in a high energy density. Accompanying the polymerization, FeN4 transforms from a direct band gap semiconductor to ferromagnetic metal. We also predict several phase transitions in FeN and FeN2 at high pressure, and the results explain the previous experimental observations by comparing the X-ray diffraction patterns. Stepwise formation of polynitrogen species is observed following the increment of nitrogen content in the stoichiometry, from isolated N atoms in FeN, to the N-2 unit in FeN2 and Fe3N8, to the N-6 unit in Fe3N8 and FeN3, and to the N-infinity chain in FeN4, FeN6, and FeN8. Ultra-incompressibility is found in marcasite-FeN2, FeN3, and FeN4 along particular crystalline directions, while high energy density, 1.37-2.02 kJ g(-1), is expected for FeN4, FeN6, and FeN8. Our results shed light on understanding the chemistry of transition metal polynitrides under pressure and encourage experimental synthesis of newly predicted iron nitrides in the near future.
机译:由于其基本要素和实际应用,氮化物材料具有相当大的兴趣。然而,过渡金属氮化物的合成通常需要极端条件,例如高温和/或高压,减慢实验发现。使用全局结构搜索方法与第一原理计算结合,我们在环境温度下系统地探索了富含氮侧的铁 - 氮化合物的化学计量相位,高压高达100GPa。在高压下,发现FE-N系统中的不同的化学素测定在相位图中出现。值得注意的是,Fen4被发现已经在环境压力下稳定。它经历了20GPa附近的聚合,导致能量密度高。伴随聚合,FEN4从直接带隙半导体变换为铁磁金属。我们还在高压下预测FEN和FEN2中的几相转变,并且结果通过比较X射线衍射图案来解释先前的实验观察。在化学计量中的氮含量,在FEN2和Fe3N8中的N-2单元中从化学计量中的氮含量增加,在FEN2和Fe3N8中的N-2单元中的氮含量增加,观察到多尼氮物质的逐步形成。 - FEN4,FEN6和FEN8中的FENITY链条。沿着特定晶体方向的Marcasite-Fen2,FEN3和FEN4中发现了超不可压缩性,而FEN4,FEN6和FEN8预计高能量密度为1.37-2.02 kJ g(-1)。我们的结果揭示了解过渡金属多氮化物在压力下的化学,并鼓励在不久的将来进行新预测铁氮化物的实验合成。

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    Yanshan Univ State Key Lab Metastable Mat Sci &

    Technol Qinhuangdao 066004 Hebei Peoples R China;

    Yanshan Univ State Key Lab Metastable Mat Sci &

    Technol Qinhuangdao 066004 Hebei Peoples R China;

    Yanshan Univ State Key Lab Metastable Mat Sci &

    Technol Qinhuangdao 066004 Hebei Peoples R China;

    Jilin Univ Coll Phys Innovat Ctr Computat Phys Methods &

    Software Changchun 130012 Jilin Peoples R China;

    Yanshan Univ State Key Lab Metastable Mat Sci &

    Technol Qinhuangdao 066004 Hebei Peoples R China;

    Yanshan Univ State Key Lab Metastable Mat Sci &

    Technol Qinhuangdao 066004 Hebei Peoples R China;

    Yanshan Univ State Key Lab Metastable Mat Sci &

    Technol Qinhuangdao 066004 Hebei Peoples R China;

    Univ Saskatchewan Dept Phys &

    Engn Phys Saskatoon SK S7N 5E2 Canada;

    Ctr High Pressure Sci &

    Technol Adv Res Beijing 100094 Peoples R China;

    Yanshan Univ Coll Environm &

    Chem Engn Key Lab Appl Chem Qinhuangdao 066004 Peoples R China;

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  • 正文语种 eng
  • 中图分类 工程材料学;
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