Number of the records: 1
Interstrand Charge Transport within Metallo-DNA: the Effect Due to Hg(II)- and Ag(I)-Mediated Base Pairs
- 1.0524100 - ÚOCHB 2021 RIV US eng J - Journal Article
Šebera, Jakub - Řeha, David - Fukal, Jiří - Sychrovský, Vladimír
Interstrand Charge Transport within Metallo-DNA: the Effect Due to Hg(II)- and Ag(I)-Mediated Base Pairs.
Journal of Physical Chemistry C. Roč. 124, č. 13 (2020), s. 7477-7486. ISSN 1932-7447. E-ISSN 1932-7455
R&D Projects: GA ČR(CZ) GA18-14990S
Institutional support: RVO:61388963 ; RVO:61388971
Keywords : excess electron transfer * Hg(II)-T * crystal structure
OECD category: Physical chemistry
Impact factor: 4.126, year: 2020
Method of publishing: Limited access
https://pubs.acs.org/doi/10.1021/acs.jpcc.9b12020
Metallo-DNA is considered promising in regard to functional molecular electronic elements. From this perspective, the longitudinal charge transport within metallo-DNA is usually studied. By contrast, this work was aimed at the transversal conductance of metallo-DNA, particularly at the effect of Hg and Ag metals on the conductance of base pairs. The charge transport through metal-mediated base pairs involving Hg(II) and Ag(I) metals, deoxythymidine (T) and 4-deoxythiothymidine (Ts), was studied by means of density functional theory (DFT) calculations employing the non-equilibrium Green's function (NEGF) method and electronic coupling calculations. The calculations showed that the conductance along the base-to-base charge transport pathway was significantly enhanced mainly due to the Hg(II)-mediated linkage. This work further showed that not only the metals within the metallo-base pair but also the substitution of the O4 atom in deoxythymidine by sulfur (the Ts nucleoside) enhanced molecular conductance as in the case of Ts-Ag(I)(2)-Ts. The bias charge transport for T-Ag(I)(2)-T was less effective than the transport for a TT mismatched base pair. The Ag orbitals participated in the highest occupied molecular orbital (HOMO) of T-Ag(I)(2)-T and Ts-Ag(I)(2)-Ts in contrast to negligible participation of Hg orbitals in the HOMO of T-Hg(II)-T. Therefore, a Coulomb blockade effect can be assumed particularly for Ag-mediated base pairs as was apparent from the plateau obtained for the calculated I/V dependencies. The Ag-mediated base pairs can, thus, be potentially utilized as molecular transistors. In addition, the metallo-base pairs anchored to gold electrodes mediated by sulfur preferred hole transport against the electron transport mechanism. This work highlighted the importance of electronic compatibility between the organic DNA scaffold and a particular metal that is essential for effective charge transport through metallo-base pairs (M-base pairs).
Permanent Link: http://hdl.handle.net/11104/0308440
Number of the records: 1