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Electrical properties of nanofibers and structural characterization of DNA-Au(III) complexes

机译:纳米纤维的电学性质及DNA-Au(III)配合物的结构表征

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摘要

In order to realize deoxyribonucleic acid (DNA)-based molecular electronics, chemical modifications of DNA are needed to improve electrical conductivity. We developed a novel method utilizing the incorporation of Au(III) ions into DNA bases to alter their electronic properties. When Au(III) ions were incorporated proportionally into DNA bases, conductance increased up to an Au(III) content of 0.42 Au(III) ion/nucleotide. Surprisingly, electron paramagnetic resonance signals of Au(II) ions were detected at g ~1.98, and the calculated spin number of Au(II) ions ranged from ~10~(13) to ~10~(15). The structural deformation of the DNA helix occurred when complexed with Au(III); simultaneously, the conductance of DNA-Au(III) complexes decreased when the content of Au(III) was higher than 0.42 atom/nucleotide. This observation implies that the maintenance of helical structure in the Au(III) doped state of DNA molecules is very important to the enhancement of the carrier mobility of DNA.
机译:为了实现基于脱氧核糖核酸(DNA)的分子电子学,需要对DNA进行化学修饰以提高导电性。我们开发了一种利用将Au(III)离子掺入DNA碱基以改变其电子性质的新方法。当Au(III)离子按比例掺入DNA碱基时,电导率增加到0.42 Au(III)离子/核苷酸的Au(III)含量。令人惊讶的是,Au(II)离子的电子顺磁共振信号在g ~1.98处被检测到,计算出的Au(II)离子的自旋数范围为~10~(13)至~10~(15)。DNA螺旋与Au(III)络合时发生结构变形;同时,当Au(III)含量高于0.42个原子/核苷酸时,DNA-Au(III)配合物的电导率降低。这一发现表明,维持DNA分子在Au(III)掺杂态下的螺旋结构对于提高DNA的载体迁移率非常重要。

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