Tensile Resistance and Fracture Mechanisms of Silica Aerogels Reinforced by Nanotube-Graphene Hybrid Networks.

IF 5 3区 化学 Q1 POLYMER SCIENCE
Gels Pub Date : 2025-06-19 DOI:10.3390/gels11060471
Lin Guo, Mu Du, Jiaqian Li, Wei Li, Mingyang Yang, Gongming Xin
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Abstract

Despite their outstanding thermal insulation and ultralight structure, silica aerogels suffer from inherent mechanical fragility, making the investigation of their mechanical behavior crucial for expanding their practical utility in advanced applications. To enhance their mechanical performance, this study introduces a dual-phase reinforcement strategy by anisotropically incorporating carbon nanotubes (CNTs) and graphene oxide (GO) sheets into the aerogel matrix. Using molecular dynamic simulations, we systematically investigate the tensile behavior and pore structure evolution of these hetero-structured composites. The results reveal a non-monotonic dependence of tensile strength on loading ratio, distinguishing three strain-dependent reinforcement regimes. High loading content (11.1%) significantly improves strength under low strain (0-26%), whereas low loading levels (1.8%) are more effective at preserving structural integrity under large strain (44-50%). Moderate loading (5.1%) yields balanced performance in intermediate regimes. While increasing carbon content reduces initial pore size by partially filling the framework, tensile deformation leads to interfacial debonding and the formation of larger pores due to CNT-GO hybrid structure interactions. This work elucidates a dual reinforcement mechanism-physical pore confinement and interfacial coupling-highlighting the critical role of nanostructure geometry in tuning strain-specific mechanical responses. The findings provide mechanistic insights into anisotropic nanocomposite behavior and offer guidance for designing robust porous materials for structural and functional applications.

纳米管-石墨烯杂化网络增强二氧化硅气凝胶的抗拉性能及断裂机理。
尽管二氧化硅气凝胶具有出色的绝热性和超轻结构,但其固有的机械脆弱性使其力学行为的研究对于扩大其在高级应用中的实际应用至关重要。为了提高其力学性能,本研究引入了一种双相强化策略,即各向异性地将碳纳米管(CNTs)和氧化石墨烯(GO)片加入气凝胶基质中。通过分子动力学模拟,系统地研究了这些异质结构复合材料的拉伸行为和孔隙结构演变。结果表明,抗拉强度非单调依赖于加载比,区分三种应变相关的钢筋制度。高加载含量(11.1%)显著提高了低应变(0-26%)下的强度,而低加载水平(1.8%)在大应变(44-50%)下更有效地保持了结构的完整性。中等负荷(5.1%)在中间状态下产生平衡的性能。虽然碳含量的增加通过部分填充骨架来减小初始孔隙大小,但由于碳纳米管-氧化石墨烯杂化结构的相互作用,拉伸变形导致界面脱粘并形成更大的孔隙。这项工作阐明了双重强化机制-物理孔隙限制和界面耦合-强调了纳米结构几何形状在调整应变特异性机械响应中的关键作用。这些发现为纳米复合材料的各向异性行为提供了机理见解,并为设计结构和功能应用的坚固多孔材料提供了指导。
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
Gels
Gels POLYMER SCIENCE-
CiteScore
4.70
自引率
19.60%
发文量
707
审稿时长
11 weeks
期刊介绍: The journal Gels (ISSN 2310-2861) is an international, open access journal on physical (supramolecular) and chemical gel-based materials. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on the maximum length of the papers, and full experimental details must be provided so that the results can be reproduced. Short communications, full research papers and review papers are accepted formats for the preparation of the manuscripts. Gels aims to serve as a reference journal with a focus on gel materials for researchers working in both academia and industry. Therefore, papers demonstrating practical applications of these materials are particularly welcome. Occasionally, invited contributions (i.e., original research and review articles) on emerging issues and high-tech applications of gels are published as special issues.
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