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优化氧化石墨烯量子点与环氧树脂界面及力学性能的分子结构数据与建模路线图

Molecular structure data and modelling roadmap for optimized oxidized graphene quantum dot and epoxy interface and mechanical properties.

作者信息

Deshpande Prathamesh, Chan-Jobe Robert, Keles Ozgur

机构信息

San Jose State University, 1 Washington Sq., San Jose, CA 95192, United States.

出版信息

Data Brief. 2024 Oct 22;57:111059. doi: 10.1016/j.dib.2024.111059. eCollection 2024 Dec.

Abstract

Hybrid epoxy composites are highly considered for low-density applications due to the excellent specific strength and specific stiffness. Enhancements made to the epoxy matrix by addition of nanofillers like carbon nanotubes (CNTs) and graphene (GNPs) have been studied in detail over the course of few decades. These enhancements not only help elevate the material properties of the matrix but also activate different failure mitigating mechanisms in the composite. Although highly beneficial, there are few shortcomings due to the challenging fabrication process of integrating such. Common problems like filler agglomeration, formation of voids, wrinkling and more can result in poor load transfer within the composite. Graphene quantum dots (GQDs), on the other hand are the smallest carbon-based filler which are known to promote more intimate contact with the matrix. Their small size enables simultaneous enhancement of stiffness, strength and toughness. In addition, functionalization of these materials enables other supramolecular interactions like hydrogen bonding which improve the interfacial interaction with the epoxy. This study provides a molecular dynamics (MD) workflow to model a single functionalized GQD embedded in an epoxy matrix and the effective mechanical response of the nanocomposite. Ten chemistries were developed with different oxygen-based functional groups which capture the effect of GQD on the mechanical properties of the nanocomposite. Uniaxial strain simulations revealed that a maximum strength gain of 56 % and stiffness gain of 18 % was computed by the oxidized GQD-epoxy nanocomposite.

摘要

由于具有优异的比强度和比刚度,混杂环氧复合材料在低密度应用中备受关注。在过去几十年里,人们对通过添加碳纳米管(CNTs)和石墨烯(GNPs)等纳米填料来增强环氧基体进行了详细研究。这些增强措施不仅有助于提高基体的材料性能,还能激活复合材料中的不同失效缓解机制。尽管非常有益,但由于整合此类材料的制造工艺具有挑战性,仍存在一些缺点。诸如填料团聚、形成空隙、起皱等常见问题会导致复合材料内部的载荷传递不佳。另一方面,石墨烯量子点(GQDs)是已知的最小的碳基填料,能与基体促进更紧密的接触。它们的小尺寸能够同时提高刚度、强度和韧性。此外,这些材料的功能化能够实现其他超分子相互作用,如氢键,从而改善与环氧的界面相互作用。本研究提供了一种分子动力学(MD)工作流程,用于模拟嵌入环氧基体中的单个功能化GQD以及纳米复合材料的有效力学响应。开发了十种具有不同氧基官能团的化学体系,以捕捉GQD对纳米复合材料力学性能的影响。单轴应变模拟显示,氧化的GQD - 环氧纳米复合材料的计算最大强度增益为56%,刚度增益为18%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a09e/11652893/81c152668dd6/gr1.jpg

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