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ORGANIZATION OF NANOCRYSTAL MOLECULES USING DNA

机译:利用DNA组织纳米分子

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PATTERNING matter on the nanometre scale is an important objective of current materials chemistry and physics. It is driven by both the need to further miniaturize electronic components and the fact that at the nanometre scale, materials properties are strongly size-dependent and thus can be tuned sensitively(1). In nanoscale crystals, quantum size effects and the large number of surface atoms influence the, chemical, electronic, magnetic and optical behaviour(2-4). 'Top-down' (for example, lithographic) methods for nanoscale manipulation reach only to the upper end of the nanometre regime(5); but whereas 'bottom-up' wet chemical techniques allow for the preparation of monodisperse, defect-free crystallites just 1-10 nm in size(6-10), ways to control the structure of nanocrystal assemblies are scarce. Here we describe a strategy for the synthesis of 'nanocrystal molecules', in which discrete numbers of gold nanocrystals are organized into spatially defined structures based on Watson-Crick base-pairing interactions. We attach single-stranded DNA oligonucleotides of defined length and sequence to individual nanocrystals, and these assemble into dimers and trimers on addition of a complementary single-stranded DNA template, We anticipate that this approach should allow the construction of more complex two- and three-dimensional assemblies. [References: 30]
机译:在纳米尺度上对物质进行图案化是当前材料化学和物理的重要目标。既需要进一步使电子组件小型化,又是因为在纳米级,材料特性强烈依赖于尺寸,因此可以灵敏地进行调节(1)。在纳米级晶体中,量子尺寸效应和大量表面原子会影响化学,电子,磁性和光学行为(2-4)。用于纳米级操作的“自顶向下”(例如,光刻)方法仅达到纳米范围的上限(5);但是,尽管“自下而上”的湿化学技术允许制备尺寸仅为1-10 nm(6-10)的单分散,无缺陷的微晶,但控制纳米晶组件结构的方法却很少。在这里,我们描述了一种合成“纳米晶体分子”的策略,其中基于Watson-Crick碱基配对相互作用,将离散数量的金纳米晶体组织成空间定义的结构。我们将定义长度和序列的单链DNA寡核苷酸连接到单个纳米晶体,并通过添加互补的单链DNA模板将其组装成二聚体和三聚体,我们预计这种方法应允许构建更复杂的2和3维组件。 [参考:30]

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