Mechanical behavior of alpha quartz with void defects under tension: A molecular dynamics study using different interatomic potentials

IF 1.9 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Modelling and Simulation in Materials Science and Engineering Pub Date : 2024-01-09 DOI:10.1088/1361-651x/ad1cd0
Yu Jia, Huadian Zhang, Manoj K. Shukla, Steven Larson, S. Nouranian, A. M. Rajendran, Shan Jiang
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Abstract

This study employs a series of molecular dynamics (MD) simulations, utilizing three commonly used interatomic potentials, i.e., van Beest, Kramer, and van Santen (BKS), Vashishta, and Tersoff to analyze the structural and mechanical characteristics within both void-free and single-void αquartz configurations. Two distinct ensembles, NVT and NPT, were separately applied to investigate the tensile response. The validation of MD results included a comparative study of the three potentials as well as a comparison with experimental microstructural and tension studies. While BKS and Vashishta potentials accurately calculated the bond lengths, density and lattice parameters compared to the experimental values for void-free α-quartz, the results obtained with Tersoff potential exhibited relatively large deviations. The BKS potential offered an accurate description of the mechanical response of α-quartz by successfully predicting stress-strain curves. The Vashishta potential overpredicted Young’s modulus as compared to BKS. The Tersoff potential could capture the elastic deformation but was unable to predict the fracture behavior. The presence of a spherical void significantly reduced mechanical behavior of α-quartz, and the extent of this reduction was highly related to void size. When applying the BKS potential with an NVT ensemble, the ultimate tensile strengths decreased by 19% and 72% with void sizes of 2.5 and 15 Å, respectively. Equivalent stress analysis reveals that the BKS potential can effectively capture greater stress concentration around the void compared to other two potentials. Based on the comparison study, the BKS potential seems to be the most suitable one to describe α-quartz under tension in a realistic manner.
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具有空隙缺陷的阿尔法石英在拉力作用下的力学行为:使用不同原子间位势的分子动力学研究
本研究采用一系列分子动力学(MD)模拟,利用三种常用的原子间势,即 van Beest、Kramer 和 van Santen (BKS)、Vashishta 和 Tersoff,分析无空隙和单空隙 α 石英构型的结构和机械特性。NVT 和 NPT 两种不同的组合分别用于研究拉伸响应。MD 结果的验证包括三种电位的比较研究以及与实验微结构和拉伸研究的比较。与无空隙α石英的实验值相比,BKS 电位和 Vashishta 电位准确地计算出了键长、密度和晶格参数,而使用 Tersoff 电位得到的结果则表现出相对较大的偏差。BKS 电位通过成功预测应力-应变曲线,准确描述了 α- 石英的机械响应。与 BKS 相比,Vashishta 电位对杨氏模量的预测过高。Tersoff 电位可以捕捉弹性变形,但无法预测断裂行为。球形空隙的存在大大降低了α-石英的机械性能,而这种降低的程度与空隙大小密切相关。当应用具有 NVT 组合的 BKS 势时,空隙大小为 2.5 Å 和 15 Å 时,极限拉伸强度分别降低了 19% 和 72%。等效应力分析表明,与其他两种电位相比,BKS 电位能有效捕捉空隙周围更大的应力集中。根据比较研究,BKS 电位似乎是最适合真实描述拉伸下的α-石英的电位。
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来源期刊
CiteScore
3.30
自引率
5.60%
发文量
96
审稿时长
1.7 months
期刊介绍: Serving the multidisciplinary materials community, the journal aims to publish new research work that advances the understanding and prediction of material behaviour at scales from atomistic to macroscopic through modelling and simulation. Subject coverage: Modelling and/or simulation across materials science that emphasizes fundamental materials issues advancing the understanding and prediction of material behaviour. Interdisciplinary research that tackles challenging and complex materials problems where the governing phenomena may span different scales of materials behaviour, with an emphasis on the development of quantitative approaches to explain and predict experimental observations. Material processing that advances the fundamental materials science and engineering underpinning the connection between processing and properties. Covering all classes of materials, and mechanical, microstructural, electronic, chemical, biological, and optical properties.
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