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DNA 介导的单壁碳纳米管组装:DNA 连接子和退火的作用。

DNA mediated assembly of single walled carbon nanotubes: role of DNA linkers and annealing.

机构信息

Department of Nanoengineering and Materials Science and Engineering Program, University of CA, San Diego, 9500 Gilman Drive, M/C 0448, La Jolla, CA 92093-0448, USA.

出版信息

Phys Chem Chem Phys. 2011 Jun 7;13(21):10004-8. doi: 10.1039/c0cp02815k. Epub 2011 Feb 21.

Abstract

With the high demand for nanoelectronic devices, extensive research has focused on the use of single walled carbon nanotubes (CNTs) due to their high electron carrier mobility, large tensile strength, and single nanometer dimensions. Despite their promise, however, their applicability has been greatly hindered by the inherent difficulties of both separating nanotubes of different chiralities and diameters and positioning them from metallic tubes and positioning them in a precise location on a surface. In recent years, single stranded DNA (ssDNA) has been identified as a potential solution for both of these problems since DNA can be used to both separate the different types of CNTs as well as direct their organization. We demonstrate here the first principles on how to guide CNT assembly directly on surfaces from solution by specific DNA hybridization. It was found that the specific DNA sequence used to disperse the carbon nanotubes greatly influences the adsorption and specificity of nanotube binding to the surface. Furthermore, we demonstrate here that thermal annealing can correct misaligned tubes or incorrect binding. These studies provide an excellent foundation for employing two-dimensional DNA templates for CNT organization for nanoelectronic logic and memory based applications. Furthermore, using a single biomaterial to both sort and place CNTs in minimal steps would greatly help the throughput, manufacturability, and cost of such devices.

摘要

随着对纳米电子器件的需求不断增加,由于单壁碳纳米管(SWCNTs)具有高电子载流子迁移率、大拉伸强度和单纳米尺寸等特点,因此广泛研究了其应用。然而,尽管它们具有很大的应用潜力,但由于分离不同手性和直径的纳米管以及将它们从金属管中分离出来并将其定位在表面上的精确位置存在固有困难,因此它们的适用性受到了极大的限制。近年来,单链 DNA(ssDNA)已被确定为这两个问题的潜在解决方案,因为 DNA 既可以用于分离不同类型的 CNT,也可以用于指导它们的组织。我们在这里展示了如何通过特定的 DNA 杂交从溶液中直接在表面上引导 CNT 组装的基本原理。结果发现,用于分散碳纳米管的特定 DNA 序列极大地影响了碳纳米管在表面上的吸附和特异性结合。此外,我们在这里还证明了热退火可以纠正未对准的管或不正确的结合。这些研究为采用二维 DNA 模板对 CNT 进行组织化,以应用于基于纳米电子逻辑和存储的应用提供了极好的基础。此外,使用单一的生物材料在最小的步骤中对 CNT 进行分类和定位,将极大地提高此类器件的吞吐量、可制造性和成本效益。

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