Prediction of novel tetravalent metal pentazolate salts with anharmonic effect

IF 6.2 3区 综合性期刊 Q1 Multidisciplinary Fundamental Research Pub Date : 2024-11-01 DOI:10.1016/j.fmre.2022.10.017
Jianan Yuan , Ding Chi , Beatriz H. Cogollo-Olivo , Yunlong Wang , Kang Xia , Jian Sun
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Abstract

In recent decades, pentazolate salts have gained considerable attention as high energy density materials (HEDMs). Using the machine-learning accelerated structure searching method, we predicted four pentazolate salts stabilized with tetravalent metals (Ti-N and Zr-N). Specifically, the ground state MN20 (M = Ti, Zr) adopts the space-group P4/mcc under ambient conditions, transforming into the I-4 phase at higher pressure. Moreover, the I-4-MN20 becomes energetically stable at moderate pressure (46.8 GPa for TiN20, 38.7 GPa for ZrN20). Anharmonic phonon spectrum calculations demonstrate the dynamic stabilities of these MN20 phases. Among them, the P4/mcc phase can be quenched to 0 GPa. Further ab-initio molecular dynamic simulations suggest that the N5 rings within these MN20 systems can still maintain integrity at finite temperatures. Calculations of the projected crystal orbital Hamilton population and reduced density gradient revealed their covalent and noncovalent interactions, respectively. The aromaticity of the N5 ring was investigated by molecular orbital theory. Finally, we predicted that these MN20 compounds have very high energy densities and exhibit good detonation velocities and pressures, compared to the HMX explosive. These calculations enrich the family of pentazolate compounds and may also guide future experiments.

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具有非调和效应的新型四价金属五唑盐的预测
近几十年来,五唑酸盐作为高能量密度材料受到了广泛的关注。​其中,基态MN20 (M = Ti, Zr)在常温条件下采用空间群P4/mcc,在高压下转变为I-4相。此外,ni -4- mn20在中压下能量稳定(TiN20为46.8 GPa, ZrN20为38.7 GPa)。非谐波声子谱计算证明了这些MN20相的动态稳定性。其中P4/mcc相可淬火至0 GPa。进一步的从头算分子动力学模拟表明,这些MN20体系中的N5环在有限温度下仍然可以保持完整性。预测晶体轨道汉密尔顿居群和降低密度梯度的计算分别揭示了它们的共价和非共价相互作用。用分子轨道理论研究了N5环的芳构性。最后,我们预测与HMX炸药相比,这些MN20化合物具有非常高的能量密度和良好的爆轰速度和压力。这些计算丰富了五唑酸盐化合物族,也可能指导未来的实验。
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来源期刊
Fundamental Research
Fundamental Research Multidisciplinary-Multidisciplinary
CiteScore
4.00
自引率
1.60%
发文量
294
审稿时长
79 days
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