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Theory and simulation of charge transfer through DNA – nanotube contacts
Authors:Gunda Rink  Yong Kong  Thorsten Koslowski
Institution:1. Institute for Physical Chemistry, University of Freiburg, Albertstrasse 23a, D-79104 Freiburg im Breisgau, Germany;2. Max-Planck-Institute for Metals Research, Heisenbergstrasse 3, D-70569 Stuttgart, Germany
Abstract:We address the problem of charge transfer between a single-stranded adenine oligomer and semiconducting boron nitride nanotubes from a theoretical and numerical perspective. The model structures have been motivated by computer simulations; sample geometries are used as the input of an electronic structure theory that is based upon an extended Su-Schrieffer-Heeger Hamiltonian. By analyzing the emerging potential energy surfaces, we obtain hole transfer rates via Marcus’ theory of charge transfer. In the presence of nanotubes, these rates exceed those of isolated DNA single strands by a factor of up to 104. This enhancement can be rationalized and quantified as a combination of a template effect and the participation of the tube within a superexchange mechanism.
Keywords:Charge transfer  Computer simulation  DNA  Nanotubes
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