Abstract

Carbon, nitrogen, and boron nanostructures are promising ballistic protection materials due to their low density and excellent mechanical properties. In this study, the ballistic properties of C3N and BC3 nanosheets against hypersonic bullets with Mach numbers greater than 6 were studied. The critical perforation conditions, and thus, the intrinsic impact strength of these 2D materials were determined by simulating ballistic curves of C3N and BC3 monolayers. Furthermore, the energy absorption scaling law with different numbers of layers and interlayer spacing was investigated, for homogeneous or hybrid configurations (alternated stacking of C3N and the BC3). Besides, we created a hybrid sheet using van der Waals bonds between two adjacent sheets based on the hypervelocity impacts of fullerene (C60) molecules utilizing molecular dynamics simulation. As a result, since the higher bond energy between N–C compared to B-C, it was shown that C3N nanosheets have higher absorption energy than BC3. In contrast, in lower impact speeds and before penetration, single-layer sheets exhibited almost similar behavior. Our findings also reveal that in hybrid structures, the C3N layers will improve the ballistic properties of BC3. The energy absorption values with a variable number of layers and variable interlayer distance (X = 3.4 Å and 4X = 13.6 Å) are investigated, for homogeneous or hybrid configurations. These results provide a fundamental understanding of ultra-light multilayered armors' design using nanocomposites based on advanced 2D materials. The results can also be used to select and make 2D membranes and allotropes for DNA sequencing and filtration.

Highlights

  • Carbon, nitrogen, and boron nanostructures are promising ballistic protection materials due to their low density and excellent mechanical properties

  • The results of this work were compared with C­ 3N and show that the mechanical properties of ­C3N under the same conditions are higher than B­ C3 and the higher values of elastic modulus due to stiffening in C-N bond were compared with C-B bond o­ nes[19]

  • Using the MD technique, in 2013, Zhao et al examined the mechanical properties of hybrid graphene and hexagonal boron nitride (h-BN) sheet with the concentration of BN, ranging from 0 to 100%

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Summary

Introduction

Nitrogen, and boron nanostructures are promising ballistic protection materials due to their low density and excellent mechanical properties. The energy absorption values with a variable number of layers and variable interlayer distance (X = 3.4 Å and 4X = 13.6 Å) are investigated, for homogeneous or hybrid configurations These results provide a fundamental understanding of ultra-light multilayered armors’ design using nanocomposites based on advanced 2D materials. Protecting structures and devices from the impact of high-energy projectiles is still an open issue for theoretical modeling and applied research It is relevant in several technology topics, including materials science and engineering, automotive, aerospace, and defense. A combination of numerical and analytical modeling has been employed to address this issue They used the reactive molecular dynamics method and examined ballistic tests for single, double, and triple-layered graphene sheets

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