tag2的力学和热力学性质:第一性原理研究

IF 0.9 4区 材料科学 Science of Advanced Materials Pub Date : 2023-08-01 DOI:10.1166/sam.2023.4524
Zai Gao Huang
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引用次数: 0

摘要

利用密度泛函理论(DFT)第一性原理计算,我们对过渡金属二元体复杂的结构、力学和热力学特性进行了广泛的探索,特别关注六边形的tag2。本研究旨在全面阐明该化合物的基本性质,揭示其在不同领域的潜在应用。本文给出的晶格常数的计算结果不仅证实了现有的理论值,而且对tag2的晶格几何结构提供了详细的了解。深入分析了包括体积模量(B)、剪切模量(G)和杨氏模量(E)在内的关键力学性能,揭示了材料对外力的机械响应。值得注意的是,B/G的比值成为一个关键参数,将六边形tag2归类为脆性相。可识别的柯西压力值进一步强化了这一观察结果,该压力值明显指向脆性行为。通过我们计算的泊松比(ν),有效地探讨了tag2中原子间成键的复杂性质。值得注意的是,我们的结果强调了tag2中原子之间离子相互作用的普遍性,特别是在施加压力的范围内。为了全面了解其机械弹性,我们还预测了该化合物的硬度,揭示了评估其在各种应用中的适用性的有形指标。这项全面的研究不仅促进了我们对过渡金属二萜的基本认识,特别是对tag2的认识,而且还为它们在从材料科学到工程等领域的潜在应用提供了重要的见解。通过我们的研究,揭示了结构稳定性、机械行为和热力学响应之间错综复杂的相互作用,有助于更深入地了解这种化合物的多方面性质,并为其创新应用铺平了道路。
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Mechanical and Thermodynamic Properties of TaGe2: A First-Principles Study
Utilizing density functional theory (DFT) first-principles calculations, we conducted an extensive exploration into the intricate structural, mechanical, and thermodynamic characteristics of transition metal ditetrelides, focusing specifically on hexagonal TaGe 2 . This investigation aimed to comprehensively elucidate the fundamental properties of this compound, shedding light on its potential applications in diverse fields. The computational findings for the lattice constants presented in this paper not only corroborated existing theoretical values but also furnished a detailed insight into the lattice geometry of TaGe 2 . In-depth analysis of key mechanical properties encompassing the bulk modulus ( B ), shear modulus ( G ), and Young’s modulus ( E ) unveiled the material’s mechanical response to external forces. Significantly, the ratio of B/G emerged as a pivotal parameter, categorizing hexagonal TaGe 2 as a brittle phase. This observation was further reinforced by the discerned Cauchy pressure value, which distinctly pointed toward brittle behavior. The intricate nature of the inter-atomic bonding in TaGe 2 was effectively probed through our calculated values of Poisson’s ratio ( ν ). Remarkably, our results underscored the prevalence of an ionic interplay among atoms within TaGe 2 , particularly within the ambit of applied pressures. To provide a comprehensive perspective on its mechanical resilience, we also predicted the compound’s hardness, unveiling a tangible metric for assessing its suitability in various applications. This comprehensive investigation not only advances our fundamental understanding of transition metal ditetrelides, particularly TaGe 2 , but also bestows vital insights into their potential utilization in fields ranging from materials science to engineering. The intricate interplay of structural stability, mechanical behavior, and thermodynamic response unraveled through our study contributes to a deeper appreciation of the multifaceted properties of this compound and paves the way for its innovative applications.
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来源期刊
Science of Advanced Materials
Science of Advanced Materials NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
自引率
11.10%
发文量
98
审稿时长
4.4 months
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