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Multicomponent bionanocomposites based on clay nanoarchitectures for electrochemical devices

机译:基于粘土纳米结构的用于电化学装置的多组分生物纳米复合材料

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摘要

Based on the unique ability of defibrillated sepiolite (SEP) to form stable and homogeneous colloidal dispersions of diverse types of nanoparticles in aqueous media under ultrasonication, multicomponent conductive nanoarchitectured materials integrating halloysite nanotubes (HNTs), graphene nanoplatelets (GNPs) and chitosan (CHI) have been developed. The resulting nanohybrid suspensions could be easily formed into films or foams, where each individual component plays a critical role in the biocomposite: HNTs act as nanocontainers for bioactive species, GNPs provide electrical conductivity (enhanced by doping with MWCNTs) and, the CHI polymer matrix introduces mechanical and membrane properties that are of key significance for the development of electrochemical devices. The resulting characteristics allow for a possible application of these active elements as integrated multicomponent materials for advanced electrochemical devices such as biosensors and enzymatic biofuel cells. This strategy can be regarded as an “a la carte” menu, where the selection of the nanocomponents exhibiting different properties will determine a functional set of predetermined utility with SEP maintaining stable colloidal dispersions of different nanoparticles and polymers in water.
机译:基于除颤的海泡石(SEP)在超声作用下在水性介质中形成稳定稳定且均匀的各种纳米颗粒胶体分散体的独特能力,集成了埃洛石纳米管(HNT),石墨烯纳米片(GNP)和壳聚糖(CHI)的多组分导电纳米体系结构材料已经开发了。所得的纳米混合悬浮液可以很容易地形成薄膜或泡沫,其中每个单独的成分在生物复合物中都起着至关重要的作用:HNT充当生物活性物质的纳米容器,GNP提供导电性(通过掺杂MWCNT增强),以及CHI聚合物基质介绍了机械和膜性能,这些性能对电化学装置的开发至关重要。所产生的特性使得这些活性元素有可能作为先进的电化学设备(如生物传感器和酶促生物燃料电池)的集成多组分材料应用。该策略可被视为“点菜”菜单,其中显示不同特性的纳米组分的选择将确定具有预定效用的功能集,而SEP则将不同纳米颗粒和聚合物在水中的胶态分散体保持稳定。

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