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Biological path for functional nanostructure fabrication and nanodevices

机译:功能纳米结构制造和纳米器件的生物途径

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The fabrication of nanostructures by biomolecules is proposed. The process utilises biotemplated biomineralisation of inorganic materials and self-assembly, termed the ‘bio–nano process’ (BNP). Artificial proteins are designed to construct functional nanometric structures in combination with top–down miniaturisation technologies. Genetically modified cage-shaped proteins, ferritin and deoxyribonucleic acid-binding protein from starved cells, are the most studied biotemplates for the BNP. The inner cavity is used as a spatially restricted chamber for the synthesis of homogeneous metal, metal-complex and semiconductor nanoparticles (NPs). Proteins with NP cores are delivered onto specific substrate locations or carbon nanotube surfaces by electrostatic interaction or specific binding peptides. These NPs realise a variety of functions such as charge storage nodes for floating gate memory, catalysts for carbon nanotube growth, quantum wells in heterogeneous junctions and nanoetching masks. Cage-shaped protein-based bioconjugates play an important role and expand the application fields. The BNP is capable of producing functional nanostructures that are otherwise impossible through other methods.
机译:提出了利用生物分子制备纳米结构的方法。该过程利用了无机材料的生物模板化生物矿化和自组装,称为“生物-纳米过程”(BNP)。人工蛋白质被设计为结合自上而下的微型化技术来构建功能纳米结构。来自饥饿细胞的转基因笼形蛋白,铁蛋白和脱氧核糖核酸结合蛋白是BNP研究最多的生物模板。内腔被用作空间受限的腔室,用于合成均质金属,金属络合物和半导体纳米粒子(NP)。具有NP核心的蛋白质通过静电相互作用或特异性结合肽被递送到特定的底物位置或碳纳米管表面。这些NP实现了多种功能,例如用于浮栅存储器的电荷存储节点,用于碳纳米管生长的催化剂,异质结中的量子阱和纳米蚀刻掩模。笼形蛋白质基生物结合物起着重要作用,并扩展了其应用领域。 BNP能够产生功能性的纳米结构,而其他方法则无法实现。

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