DNA as a supramolecular framework for the helical arrangements of chromophores: towards photoactive DNA-based nanomaterials
- 9 April 2009
- journal article
- research article
- Published by Royal Society of Chemistry (RSC) in Chemical Communications
- No. 19,p. 2615-2624
- https://doi.org/10.1039/b821728a
Abstract
Nucleic acids have been emerging as supramolecular structural scaffolds for the helical organization of chromophores in the creation of functional nanomaterials mainly because of the their unique structural features and synthetic accessibility. A large number of chromophores have been successfully incorporated into DNA or RNA as C-nucleosides, as base surrogates or as modified sugars using solid phase phosphoramidite chemistry. Moreover, multiple incorporations yield the helical organization of the chromophores inside or outside the DNA or RNA double helix depending upon the conjugation of the chromophores. Significant photophysical interactions are observed in the chromophore stacks resulting in unique optical properties that are significantly different from the monomer properties. In this feature article, multichromophore labelled nucleic acids are reviewed with special emphasis on the self-assembly induced modulation of the optical properties.This publication has 67 references indexed in Scilit:
- Hydrogen-Bonded Assemblies of Dyes and Extended π-Conjugated SystemsPublished by Springer Nature ,2005
- Molecular WiresPublished by Springer Nature ,2005
- Combination of orthogonal supramolecular interactions in polymeric architecturesChemical Communications, 2005
- About Supramolecular Assemblies of π-Conjugated SystemsChemical Reviews, 2005
- Nucleic acid nanostructures: bottom-up control of geometry on the nanoscaleReports on Progress in Physics, 2004
- Establishing the Molecular Basis for Molecular ElectronicsAngewandte Chemie International Edition, 2004
- Molecular rectification: why is it so rare?Chemical Physics, 2002
- Molecular Electronics. Synthesis and Testing of ComponentsAccounts of Chemical Research, 2000
- Electrical Rectification by a Molecule: The Advent of Unimolecular Electronic DevicesAccounts of Chemical Research, 1999
- Molecular rectifiersChemical Physics Letters, 1974