Nanomaterials and Nanomanufacturing Research Center, University of South Florida, 4202 E Fowler Avenue, Tampa, FL 33620, USA.
Nanotechnology. 2010 May 7;21(18):185604. doi: 10.1088/0957-4484/21/18/185604. Epub 2010 Apr 14.
There is considerable interest in using DNA nanowires or nanotubes in a wide variety of bioelectronic applications and microcircuitry. Various methods have been developed to construct DNA nanostructures. Here, we report a novel method to construct semiconducting DNA nanowires by applying a suitable DC bias to a gold plating solution containing double-stranded DNA. The self-assembled nanowires fabricated by this method contain attached gold nanoparticles. Further, we report that the dimensions of the nanowires can be easily manipulated by altering the applied DC bias. We also confirmed the semiconducting nature of the DNA nanowires by studying their resistance-temperature behavior from 25 to 65 degrees C in a microelectrode system. These studies describe a simple process by which gold-decorated, semiconducting DNA nanowires could be created and may lead to a breakthrough in the field of self-assembly of nanometer-scale circuits. The self-assembled structures do have some similarity with tube-like structures but in the present work we are using the term 'DNA nanowires' to define the structures.
人们对将 DNA 纳米线或纳米管应用于各种生物电子应用和微电路中非常感兴趣。已经开发出各种方法来构建 DNA 纳米结构。在这里,我们报告了一种通过向含有双链 DNA 的镀金溶液施加适当的直流偏压来构建半导体 DNA 纳米线的新方法。通过这种方法制造的自组装纳米线包含附着的金纳米颗粒。此外,我们还报告说,通过改变施加的直流偏压,很容易操纵纳米线的尺寸。我们还通过在微电极系统中研究其在 25 至 65 摄氏度之间的电阻-温度特性,证实了 DNA 纳米线的半导体性质。这些研究描述了一种简单的过程,通过该过程可以制造出金修饰的半导体 DNA 纳米线,这可能会在纳米级电路自组装领域取得突破。自组装结构确实与管状结构有些相似,但在本工作中,我们使用术语“DNA 纳米线”来定义这些结构。