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Carbon Nanotube and Cellulose Nanocrystal Hybrid Films

机译:碳纳米管和纤维素纳米晶体杂化膜

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The use of cellulose nanocrystals (CNC) in high performance coatings is attractive for micro-scale structures or device fabrication due to the anisotropic geometry, however CNC are insulating materials. Carbon nanotubes (CNT) are also rod-shaped nanomaterials that display high mechanical strength and electrical conductivity. The hydrophobic regions of surface-modified CNC can interact with hydrophobic CNT and aid in association between the two anisotropic nanomaterials. The long-range electrostatic repulsion of CNC plays a role in forming a stable CNT and CNC mixture dispersion in water, which is integral to forming a uniform hybrid film. At concentrations favorable for film formation, the multiwalled nanotubes + CNC mixture dispersion shows cellular network formation, indicating local phase separation, while the single-walled nanotube + CNC mixture dispersion shows schlieren texture, indicating liquid crystal mixture formation. Conductive CNT + CNC hybrid films (5–20 μm thick) were cast on glass microscope slides with and without shear by blade coating. The CNT + CNC hybrid films electrical conductivity increased with increasing CNT loadings and some anisotropy was observed with the sheared hybrid films, although to a lesser extent than what was anticipated. Percolation models were applied to model the hybrid film conductivity and correlate with the hybrid film microstructure.
机译:由于各向异性的几何形状,在高性能涂料中使用纤维素纳米晶体(CNC)对于微型结构或设备制造具有吸引力,但是CNC是绝缘材料。碳纳米管(CNT)也是具有高机械强度和导电性的棒状纳米材料。表面改性的CNC的疏水区域可与疏水CNT相互作用,并有助于两种各向异性纳米材料之间的缔合。 CNC的远距离静电排斥作用在水中形成稳定的CNT和CNC混合物分散体中,这对于形成均匀的杂化膜必不可少。在有利于成膜的浓度下,多壁纳米管+ CNC混合物分散体显示出蜂窝状网络的形成,表明局部相分离,而单壁纳米管+ CNC混合物分散体显示出纹影结构,表明形成了液晶混合物。导电CNT + CNC杂化膜(5–20μm厚)被浇铸在带有或不带有刀片涂层剪切的玻璃显微镜载玻片上。 CNT + CNC杂化薄膜的电导率随CNT负载的增加而增加,并且在剪切杂化薄膜中观察到一些各向异性,尽管程度比预期的要小。应用渗流模型对杂化膜的电导率进行建模并与杂化膜的微观结构相关。

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