Mechanical anisotropy on reduced ballistic limit of phosphorene by cone wave reflection:A computational study

IF 4.3 3区 工程技术 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Extreme Mechanics Letters Pub Date : 2024-05-25 DOI:10.1016/j.eml.2024.102173
Ning Liu , Xiaolong Chen , Kezhi Mao , Shaoheng Li , Songbai Wu , Yan Li
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Abstract

Two-dimensional materials, such as phosphorene, exhibit exceptional electrical and mechanical properties, offering promising prospects for both electronic and mechanical applications. To design more mechanically reliable devices using phosphorene, exploring its mechanical performance, especially impact resistance, is necessary. Here, coarse-grained molecular dynamics simulations are presented to study the mechanical responses of phosphorene under ballistic impact. Interestingly, size-dependent behaviors have been observed, which could be attributed to a coupling effect of cone wave reflection and membrane size. Owing to significant differences in Young’s modulus between the armchair and zigzag direction in phosphorene, mechanical wave propagation exhibits substantial anisotropy in a single-layer phosphorene membrane. A critical membrane size has been identified, below which cone wave reflections from the boundaries can induce perforation: a phenomenon particularly relevant to micro-ballistic testing of two-dimensional material membranes. The effect of boundary shape on reduction in ballistic limit has been studied, in which all the phosphorene sheets in the study are elliptical while the axial ratio of the ellipses is varied from 0.54 to 1.85. The axial ratio 0.69 is proven to maximize the strain amplification induced by cone wave reflection, thus leading to the biggest reduction in ballistic impact for phosphorene. A unitless indicator based on atomic Green-Lagrange strain has been proposed, which can effectively quantify the boundary shape effect on the reduced ballistic limit. Our findings provide timely guidance for the design of future nanodevices using phosphorene with high impact resistance.

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利用锥波反射降低磷烯弹道极限的力学各向异性:计算研究
磷烯等二维材料具有优异的电气和机械性能,为电子和机械应用提供了广阔的前景。为了利用磷烯设计出机械性能更可靠的器件,有必要探索其机械性能,尤其是抗冲击性能。本文通过粗粒度分子动力学模拟研究了磷烯在弹道冲击下的机械响应。有趣的是,我们观察到了与尺寸有关的行为,这可能是由于锥波反射和膜尺寸的耦合效应。由于磷烯中扶手和人字形方向的杨氏模量存在显著差异,机械波在单层磷烯膜中的传播表现出很大的各向异性。已确定了临界膜尺寸,低于该尺寸时,来自边界的锥波反射会导致穿孔:这一现象与二维材料膜的微弹道测试尤为相关。我们研究了边界形状对降低弹道极限的影响,研究中的所有磷烯薄片都是椭圆形的,而椭圆的轴向比在 0.54 到 1.85 之间变化。事实证明,0.69 的轴向比能最大限度地放大锥波反射引起的应变,从而最大程度地降低磷烯的弹道冲击力。我们还提出了一种基于原子格林-拉格朗日应变的无单位指标,它能有效量化边界形状对降低弹道极限的影响。我们的研究结果为利用磷烯设计具有高抗冲击性的未来纳米器件提供了及时的指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Extreme Mechanics Letters
Extreme Mechanics Letters Engineering-Mechanics of Materials
CiteScore
9.20
自引率
4.30%
发文量
179
审稿时长
45 days
期刊介绍: Extreme Mechanics Letters (EML) enables rapid communication of research that highlights the role of mechanics in multi-disciplinary areas across materials science, physics, chemistry, biology, medicine and engineering. Emphasis is on the impact, depth and originality of new concepts, methods and observations at the forefront of applied sciences.
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