†Key Laboratory of Bio-Inspired Smart Interfacial Science and Technology of Ministry of Education, School of Chemistry and Environment, BeiHang University, Beijing 100191,China.
‡Sinopec Beijing Research Institute of Chemical Industry, Beijing 100013, China.
ACS Appl Mater Interfaces. 2015 May 6;7(17):9281-6. doi: 10.1021/acsami.5b02194. Epub 2015 Apr 23.
Due to hierarchical organization of micro- and nanostructures, natural nacre exhibits extraordinary strength and toughness, and thus provides a superior model for the design and fabrication of high-performance artificial composite materials. Although great progress has been made in constructing layered composites by alternately stacking hard inorganic platelets and soft polymers, the real issue is that the excellent strength of these composites was obtained at the sacrifice of toughness. In this work, inspired by the layered aragonite microplatelets/chitin nanofibers-protein structure of natural nacre, alumina microplatelets-graphene oxide nanosheets-poly(vinyl alcohol) (Al2O3/GO-PVA) artificial nacre is successfully constructed through layer-by-layer bottom-up assembly, in which Al2O3 and GO-PVA act as "bricks" and "mortar", respectively. The artificial nacre has hierarchical "brick-and-mortar" structure and exhibits excellent strength (143 ± 13 MPa) and toughness (9.2 ± 2.7 MJ/m(3)), which are superior to those of natural nacre (80-135 MPa, 1.8 MJ/m(3)). It was demonstrated that the multiscale hierarchical structure of ultrathin GO nanosheets and submicrometer-thick Al2O3 platelets can deal with the conflict between strength and toughness, thus leading to the excellent mechanical properties that cannot be obtained using only one size of platelet. We strongly believe that the work presented here provides a creative strategy for designing and developing new composites with excellent strength and toughness.
由于微纳结构的分级组织,天然珍珠母展现出非凡的强度和韧性,因此为设计和制造高性能人工复合材料提供了卓越的模型。尽管通过交替堆叠硬无机片层和软聚合物来构建层状复合材料已经取得了很大进展,但真正的问题是,这些复合材料的优异强度是以牺牲韧性为代价获得的。在这项工作中,受天然珍珠母层状方解石微片/几丁质纳米纤维-蛋白质结构的启发,通过层层自下而上的组装成功构建了氧化铝微片/氧化石墨烯纳米片/聚乙烯醇(Al2O3/GO-PVA)人工珍珠母,其中 Al2O3 和 GO-PVA 分别作为“砖”和“灰浆”。人工珍珠母具有分级的“砖-灰浆”结构,表现出优异的强度(143±13 MPa)和韧性(9.2±2.7 MJ/m³),优于天然珍珠母(80-135 MPa,1.8 MJ/m³)。结果表明,超薄 GO 纳米片和亚微米厚的 Al2O3 薄片的多尺度分级结构可以解决强度和韧性之间的冲突,从而导致优异的力学性能,而仅使用一种尺寸的薄片是无法获得的。我们坚信,这里提出的工作为设计和开发具有优异强度和韧性的新型复合材料提供了一种创造性策略。