Department of Mechanical Engineering, The University of Hong Kong, Hong Kong SAR, China.
Advanced Biomedical Instrumentation Centre Limited, Hong Kong SAR, China.
Nat Commun. 2022 Jul 22;13(1):4242. doi: 10.1038/s41467-022-31957-2.
Three-dimensional (3D) microfibrillar network represents an important structural design for various natural tissues and synthetic aerogels. Despite extensive efforts, achieving high mechanical properties for synthetic 3D microfibrillar networks remains challenging. Here, we report ultrastrong polymeric aerogels involving self-assembled 3D networks of aramid nanofiber composites. The interactions between the nanoscale constituents lead to assembled networks with high nodal connectivity and strong crosslinking between fibrils. As revealed by theoretical simulations of 3D networks, these features at fibrillar joints may lead to an enhancement of macroscopic mechanical properties by orders of magnitude even with a constant level of solid content. Indeed, the polymeric aerogels achieved both high specific tensile modulus of ~625.3 MPa cm g and fracture energy of ~4700 J m, which are advantageous for diverse structural applications. Furthermore, their simple processing techniques allow fabrication into various functional devices, such as wearable electronics, thermal stealth, and filtration membranes. The mechanistic insights and manufacturability provided by these robust microfibrillar aerogels may create further opportunities for materials design and technological innovation.
三维(3D)微纤维网络是各种天然组织和合成气凝胶的重要结构设计。尽管已经进行了广泛的研究,但对于合成 3D 微纤维网络来说,实现高机械性能仍然具有挑战性。在这里,我们报告了涉及芳纶纳米纤维复合材料自组装 3D 网络的超韧聚合物气凝胶。纳米级成分之间的相互作用导致组装网络具有高节结连接性和纤维之间的强交联。通过对 3D 网络的理论模拟揭示,这些纤维接头的特征可能会导致宏观机械性能提高几个数量级,即使在固含量不变的情况下也是如此。事实上,所制备的聚合物气凝胶实现了高比拉伸模量约 625.3 MPa·cm/g 和断裂能约 4700 J/m,这对于各种结构应用是有利的。此外,其简单的加工技术允许制造各种功能器件,如可穿戴电子设备、热隐身和过滤膜。这些坚固的微纤维气凝胶提供的机械洞察力和可制造性可能为材料设计和技术创新创造更多机会。