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Structures and properties of uranium-niobium intermetallic compounds under high pressure: A first principles study

机译:高压下铀-铌金属间化合物的结构与性能:第一性原理研究

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Metallic uranium-based alloys, with d-transition metals such as Nb, Mo, and Zr, are promising candidates for actinide fuel. For this purpose, their behaviors under changing physical stimuli need to be understood. Here, we systematically investigate U-Nb intermetallic compounds and predict new compound formations under different pressures using the first-principles swarm-intelligence structure searching method. Two new compounds (U1Nb6 and U2Nb1) were identified to be thermodynamically stable at ambient and high pressures. U(1)Nb(6 )has a triclinic symmetry that is stable in the pressure range of 0-200 GPa, while U2Nb1 has a hexagonal closely packed structure at low pressure and transforms to a simple hexagonal lattice at 20 GPa. Other compounds, particularly U-rich ones (U3Nb1, U4Nb1, U5Nb1, and U6Nb1), are found metastable at ambient and high pressures, and all have orthorhombic structures. The structural, vibrational, electronic, and mechanical properties of predicted U-rich compounds were thoroughly studied using density-functional theory. The results of phonon spectra and elastic constant show that the predicted new structures are dynamically and mechanically stable in the corresponding pressure range. Also, these newly identified U-rich compounds exhibit strong composition dependence, and the pressure-induced enhancements of structural stability and mechanical performances are evident. These findings shall enrich the understanding of U-based alloys and serve as meaningful predictions for experimental research in the future.
机译:金属铀基合金,以及铌、钼和锆等d过渡金属,是锕系元素燃料的有前途的候选者。为此,需要了解它们在不断变化的物理刺激下的行为。本文系统地研究了U-Nb金属间化合物,并采用第一性原理群智能结构搜索方法预测了不同压力下的新化合物形成。两种新化合物(U1Nb6 和 U2Nb1)在环境和高压下具有热力学稳定性。U(1)Nb(6)具有三斜对称性,在0-200 GPa的压力范围内保持稳定,而U2Nb1在低压下具有六方紧密堆积结构,在20 GPa时转变为简单的六方晶格。其他化合物,特别是富含 U 的化合物(U3Nb1、U4Nb1、U5Nb1 和 U6Nb1),在环境和高压下均具有亚稳态,并且都具有斜方结构。利用密度泛函理论对预测的富U化合物的结构、振动、电子和力学性能进行了深入研究。声子谱和弹性常数结果表明,预测的新结构在相应的压力范围内具有动力学和力学稳定性。此外,这些新发现的富U化合物表现出很强的成分依赖性,并且压力诱导的结构稳定性和力学性能的增强是显而易见的。这些发现将丰富人们对U基合金的认识,并为未来的实验研究提供有意义的预测。

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