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高压下的新型铷聚氮材料。

Novel rubidium poly-nitrogen materials at high pressure.

机构信息

Department of Physics, University of South Florida, Tampa, Florida 33620, USA.

出版信息

J Chem Phys. 2017 Dec 21;147(23):234701. doi: 10.1063/1.5004416.

Abstract

First-principles crystal structure search is performed to predict novel rubidium poly-nitrogen materials at high pressure by varying the stoichiometry, i.e., relative quantities of the constituent rubidium and nitrogen atoms. Three compounds of high nitrogen content, RbN, RbN, and RbN, are discovered. Rubidium pentazolate (RbN) becomes thermodynamically stable at pressures above 30 GPa. The charge transfer from Rb to N atoms enables aromaticity in cyclo-N while increasing the ionic bonding in the crystal. Rubidium pentazolate can be synthesized by compressing rubidium azide (RbN) and nitrogen (N) precursors above 9.42 GPa, and its experimental discovery is aided by calculating the Raman spectrum and identifying the features attributed to N modes. The two other interesting compounds, RbN containing infinitely long single-bonded nitrogen chains and RbN consisting of single-bonded N hexazine rings, become thermodynamically stable at pressures exceeding 60 GPa. In addition to the compounds with high nitrogen content, RbN, a new compound with 1:1 RbN stoichiometry containing bent N azides is found to exist at high pressures.

摘要

通过改变化学计量比(即组成铷和氮原子的相对数量),对高压下的新型铷多氮材料进行了第一性原理晶体结构搜索。发现了三种高氮含量的化合物:RbN、RbN 和 RbN。五氮化物(RbN)在 30 GPa 以上的压力下变得热力学稳定。铷原子向氮原子的电荷转移使环-N 具有芳香性,同时增加了晶体中的离子键。五氮化物可以通过在 9.42 GPa 以上压缩叠氮化铷(RbN)和氮(N)前体来合成,其实验发现得益于计算拉曼光谱并识别归因于 N 模式的特征。另外两种有趣的化合物,即含有无限长单键氮链的 RbN 和由单键 N 六嗪环组成的 RbN,在超过 60 GPa 的压力下变得热力学稳定。除了高氮含量的化合物 RbN 之外,还发现了一种新的化合物 RbN,其化学计量比为 1:1,含有弯曲的 N 叠氮化物,在高压下存在。

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