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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Structure, elastic characteristic, ideal strengths, and phonon stability of binary uranium intermetallic UGe3 of AuCu3-type
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Structure, elastic characteristic, ideal strengths, and phonon stability of binary uranium intermetallic UGe3 of AuCu3-type

机译:Aucu3型二元铀金属间uge3的结构,弹性特性,理想优势和声子稳定性

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Crystallographic characterization, energy band structure, densities of states and charge density, elastic properties, ideal tensile and shear strengths, lattice dynamics and thermophysical characteristics of UGe3 of AuCu3-type have been studied by employing the first principles method based on Density Functional Theory (DFT). The optimized lattice parameters, such as lattice constant a, equilibrium cell volume V-0, U-Ge distance and U-U distance of UGe3, are in favorable agreement with the available experimental results. Three single-crystalline elastic constants of C-11, C-12, and C-44 have been obtained using the "energy-strain" technique by increasingly varying small strains. The polycrystalline elastic moduli including volume modulus B, Young's modulus E, and shear modulus G, Poisson's ratio v, brittle/ductile nature, Debye temperature theta(D), and the integration of elastic wave velocities over different crystallographic directions have also been successfully calculated. The anisotropy of the three-directional bulk modulus and Young's modulus is systematically explored and analyzed. The calculations indicate that UGe3 of AuCu3-type should be stabilized mechanically, and the system possesses insignificant elastic anisotropy. In particular, the vibrational spectrum, phonon densities of states and the infrared-active and inactive vibration modes at the center of the Brillouin zone are determined using Density Functional Perturbation Theory (DFPT) and group theory for the first time. This study reveals that UGe3 of AuCu3-type is also stable dynamically. Finally, within the calculated phonon densities of states and the quasi-harmonic Debye model, the constant volume heat capacity C-v and the vibration entropy S in the temperature range of 0-1000 K are predicted and analyzed comprehensively. The present investigations are expected to provide some valuable references for further exploring the properties of uranium compounds.
机译:通过采用基于密度函数理论的第一个原理方法,研究了结晶表征,能源带结构,状态和电荷密度,弹性特性,理想的拉伸和剪切强度,uge3的uge3的uge3的热理特性(DFT )。优化的晶格参数,例如晶格常数A,平衡电池容积V-0,UGe3的UGE距离和U-U距离,与可用的实验结果有利。使用“能量 - 应变”技术通过越来越多的小菌株,已经获得了C-11,C-12和C-44的三个单晶弹性常数。还原成功地计算了包括体积模量B,杨氏模量e和剪切模量G,泊松比V,脆性/延展性,德比温度θ(d)的多晶弹性模量,以及弹性波速度在不同的晶体方向上的集成。系统地探索和分析三方散装模量和杨氏模量的各向异性。计算表明,Aucu3型的UGE3应机械稳定,系统具有微不足道的弹性各向异性。特别地,使用密度泛函扰动理论(DFPT)和第一次组织理论确定布里渊区中心的振动谱,声子密度和布里渊区中心处的红外主动和无效振动模式。本研究表明,Aucu3型的UGE3也是动态稳定的。最后,在所计算的声子密度和准谐波脱模模型中,预测并分析了0-1000K的温度范围内的恒定体积热容量C-V和振动熵S。预计本调查将提供一些有价值的参考,用于进一步探索铀化合物的性质。

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