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定制含石墨烯的纳米复合材料界面以实现高强度和韧性。

Tailoring nanocomposite interfaces with graphene to achieve high strength and toughness.

作者信息

Song Ningning, Gao Zan, Li Xiaodong

机构信息

Department of Mechanical and Aerospace Engineering, University of Virginia, 122 Engineer's Way, Charlottesville, VA 22904, USA.

出版信息

Sci Adv. 2020 Oct 14;6(42). doi: 10.1126/sciadv.aba7016. Print 2020 Oct.

Abstract

The nanofiller reinforcing effect in nanocomposites is often far below the theoretically predicted values, largely because of the poor interfacial interaction between the nanofillers and matrix. Here, we report that graphene-wrapped BC nanowires (BC-NWs@graphene) empowered exceptional dispersion of nanowires in matrix and superlative nanowire-matrix bonding. The 0.2 volume % BC-NWs@graphene reinforced epoxy composite exhibited simultaneous enhancements in strength (144.2 MPa), elastic modulus (3.5 GPa), and ductility (15%). Tailoring the composite interfaces with graphene enabled effective utilization of the nanofillers, resulting in two times increase in load transfer efficiency. Molecular dynamics simulations unlocked the shear mixing graphene/nanowire self-assembly mechanism. This low-cost yet effective technique presents unprecedented opportunities for improving nanocomposite interfaces, enabling high load transfer efficiency, and opens up a new path for developing strong and tough nanocomposites.

摘要

纳米复合材料中的纳米填料增强效果往往远低于理论预测值,这主要是由于纳米填料与基体之间的界面相互作用较差。在此,我们报道了石墨烯包裹的细菌纤维素纳米线(BC-NWs@graphene)使纳米线在基体中具有出色的分散性以及卓越的纳米线-基体结合力。含0.2体积% BC-NWs@graphene的增强环氧树脂复合材料在强度(144.2兆帕)、弹性模量(3.5吉帕)和延展性(15%)方面同时得到提高。用石墨烯对复合材料界面进行剪裁能够有效利用纳米填料,使载荷传递效率提高两倍。分子动力学模拟揭示了剪切混合石墨烯/纳米线的自组装机制。这种低成本却有效的技术为改善纳米复合材料界面、实现高载荷传递效率带来了前所未有的机遇,并为开发强韧纳米复合材料开辟了一条新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f74a/7556841/eba3c0e68a4f/aba7016-F1.jpg

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