Gating of Single-Layer Graphene with Single-Stranded Deoxyribonucleic Acids
โ Scribed by Jian Lin; Desalegne Teweldebrhan; Khalid Ashraf; Guanxiong Liu; Xiaoye Jing; Zhong Yan; Rong Li; Mihri Ozkan; Roger K. Lake; Alexander A. Balandin; Cengiz S. Ozkan
- Book ID
- 104593274
- Publisher
- John Wiley and Sons
- Year
- 2010
- Tongue
- English
- Weight
- 302 KB
- Volume
- 6
- Category
- Article
- ISSN
- 1613-6810
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โฆ Synopsis
Abstract
Patterning of biomolecules on graphene layers could provide new avenues to modulate their electrical properties for novel electronic devices. Singleโstranded deoxyribonucleic acids (ssDNAs) are found to act as negativeโpotential gating agents that increase the hole density in singleโlayer graphene. Currentโvoltage measurements of the hybrid ssDNA/graphene system indicate a shift in the Dirac point and โintrinsicโ conductance after ssDNA is patterned. The effect of ssDNA is to increase the hole density in the graphene layer, which is calculated to be on the order of 1.8โรโ10^12^โcm^โ2^. This increased density is consistent with the Raman frequency shifts in the Gโpeak and 2D band positions and the corresponding changes in the Gโpeak full width at half maximum. Ab initio calculations using density functional theory rule out significant charge transfer or modification of the graphene band structure in the presence of ssDNA fragments.
๐ SIMILAR VOLUMES
A new method for the easy preparation of specific single-stranded DNA fragments is presented. Recombinant Ml3 DNA containing the strand complementary to the sequence of interest is made partially double-stranded by elongating a conventional Ml3 sequencing primer. Following linearization by enzymatic