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Updated: May 30, 2026

Studying DNA Looping by Single-Molecule FRET
Published on: June 28, 2014
Effects of the environment on the electric conductivity of double-stranded DNA molecules
A V Malyshev1, E Díaz, F Domínguez-Adame
1GISC, Departamento de Física de Materiales, Universidad Complutense, E-28040 Madrid, Spain.
Abstract:
We present a theoretical analysis of the effects of the environment on charge transport in double-stranded synthetic poly(G)-poly(C) DNA molecules attached to two ideal leads. Coupling of the DNA to the environment results in two effects: (i) localization of carrier functions due to static disorder and (ii) phonon-induced scattering of the carriers between the localized states, resulting in hopping conductivity. A nonlinear Pauli master equation for populations of localized states is used to describe the hopping transport and calculate the electric current as a function of the applied bias. We demonstrate that, although the electronic gap in the density of states shrinks as the disorder increases, the voltage gap in the I-V characteristics becomes wider. A simple physical explanation of this effect is provided.
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