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Integration of stiff graphene and tough silk for the design and fabrication of versatile electronic materials

机译:硬石墨烯和硬丝的集成用于设计和制造通用电子材料

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摘要

The production of structural and functional materials with enhanced mechanical properties through the integration of soft and hard components is a common approach to Nature’s materials design. However, directly mimicking these optimized design routes in the lab for practical applications remains challenging. For example, graphene and silk are two materials with complementary mechanical properties that feature ultrahigh stiffness and toughness, respectively. Yet no simple and controllable approach has been developed to homogeneously integrate these two components into functional composites, mainly due to the hydrophobicity and chemical inertness of the graphene. In this study, well-dispersed and highly stable graphene/silk fibroin (SF) suspension systems were developed, which are suitable for processing to fabricate polymorphic materials, such as films, fibers, and coatings. The obtained graphene/SF nanocomposites maintain the electronic advantages of graphene, and they also allow tailorable mechanical performance to form including ultrahigh stretchable (with a strain to failure to 611±85%), or high strength (339 MPa) and high stiffness (7.4 GPa) material systems. More remarkably, the electrical resistances of these graphene/SF materials are sensitive to material deformation, body movement, as well as humidity and chemical environmental changes. These unique features promise their utility as wearable sensors, smart textiles, intelligent skins, and human-machine interfaces.
机译:通过软硬部件的集成生产具有增强的机械性能的结构和功能材料是大自然材料设计的一种常见方法。但是,在实际应用中直接模仿实验室中的这些优化设计路线仍然具有挑战性。例如,石墨烯和丝绸是两种具有互补机械性能的材料,分别具有超高的刚度和韧性。然而,主要由于石墨烯的疏水性和化学惰性,尚未开发出简单且可控的方法来将这两种组分均匀地结合到功能性复合物中。在这项研究中,开发了分散良好且高度稳定的石墨烯/丝素蛋白(SF)悬浮体系,适用于加工制造多晶型材料,例如薄膜,纤维和涂层。所获得的石墨烯/ SF纳米复合材料保持了石墨烯的电子优势,并且还允许形成可定制的机械性能,包括超高拉伸性(应变破坏至611±85%)或高强度(339 MPa)和高刚度(7.4) GPa)物料系统。更显着的是,这些石墨烯/ SF材料的电阻对材料变形,人体运动以及湿度和化学环境变化敏感。这些独特的功能有望将其用作可穿戴传感器,智能纺织品,智能皮肤和人机界面。

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