RT Journal Article T1 Electronic structure and transport properties of double-stranded Fibonacci DNA A1 Maciá Barber, Enrique Alfonso AB We consider a class of synthetic DNA molecules based on a quasiperiodic arrangement of their constituent nucleotides. Making use of a two-step renormalization scheme the double-stranded DNA molecule is modeled in terms of a one-dimensional effective Hamiltonian, which includes contributions from the nucleobase system, the sugar-phosphate backbone, and the environment. Analytical results for the energy spectrum structure and Landauer conductance of Fibonacci DNA approximants are derived and compared with those corresponding to periodic polyGACT-polyCTGA chains. The main effect of quasiperiodic order is the emergence of a highly fragmented energy spectrum, introducing a characteristic low-energy scale in the electronic structure of aperiodic DNA chains. The presence of a series of high-conductance peaks in the transmission spectra of Fibonacci approximants indicates the existence of extended states in these systems. These results open perspectives for experimental work in nanodevices based on synthetic DNA. PB American Physical Society SN 1098-0121 YR 2006 FD 2006-12 LK https://hdl.handle.net/20.500.14352/52104 UL https://hdl.handle.net/20.500.14352/52104 LA eng NO ©2006 The American Physical Society.I warmly thank E. Artacho, R. Gutiérrez, S. Roche, and E. B. Starikov for sharing useful information. I acknowledge M. V. Hernández for a critical reading of the manuscript. This work has been supported by the Universidad Complutense de Madrid through Project No. PR27/05-14014-BSCH. NO Universidad Complutense de Madrid DS Docta Complutense RD 17 ago 2024