We systematically examine all the tight-binding parameters pertinent to charge transfer along DNA. The $ \pi$ molecular structure of the four DNA bases (adenine, thymine, cytosine, and guanine) is investigated by using the linear combination of atomic orbitals method with a recently introduced parametrization. The HOMO and LUMO wave functions and energies of DNA bases are discussed and then used for calculating the corresponding wave functions of the two B-DNA base-pairs (adenine-thymine and guanine-cytosine). The obtained HOMO and LUMO energies of the bases are in good agreement with available experimental values. Our results are then used for estimating the complete set of charge transfer parameters between neighboring bases and also betw...
A semi-empirical Valence-Bond/Hartree–Fock (VB/HF) method is developed to calculate one- and two-ele...
ABSTRACT: The electronic structures of an entire segment of a DNA molecule were calculated in its si...
DNA is a material that has the potential to be used in nanoelectronic devices as an active component...
We systematically examine all the tight-binding parameters pertinent to charge transfer along DNA. T...
We calculated electronic matrix elements for hole transfer between adjacent nucleobases in DNA. Calc...
Absolute rates of hole transfer between guanine nucleobases separated by one or two A:T base pairs i...
none3siWe address the problem of charge transfer through DNA-gold junctions from a theoretical and n...
Electronic coupling Vda is one of the key parameters that determine the rate of charge transfer thro...
In this work, we approach the problem of charge transfer in deoxyribonucleic acid (DNA) from a theor...
In this work, we address the phenomenon of charge transport in DNA using a simple, but chemically sp...
In Chap. 4, Koslowski and Cramer address the phenomenon of charge transport in DNA using a simple, b...
A quantum chemistry based Green's function formulation of long-range charge transfer in deoxyribose ...
In this paper, we extend the previously described general model for charge transfer reactions, intro...
AbstractWe study the electronic properties of DNA by way of a tight-binding model applied to four pa...
ABSTRACT We study the electronic properties of DNA by way of a tight-binding model applied to four p...
A semi-empirical Valence-Bond/Hartree–Fock (VB/HF) method is developed to calculate one- and two-ele...
ABSTRACT: The electronic structures of an entire segment of a DNA molecule were calculated in its si...
DNA is a material that has the potential to be used in nanoelectronic devices as an active component...
We systematically examine all the tight-binding parameters pertinent to charge transfer along DNA. T...
We calculated electronic matrix elements for hole transfer between adjacent nucleobases in DNA. Calc...
Absolute rates of hole transfer between guanine nucleobases separated by one or two A:T base pairs i...
none3siWe address the problem of charge transfer through DNA-gold junctions from a theoretical and n...
Electronic coupling Vda is one of the key parameters that determine the rate of charge transfer thro...
In this work, we approach the problem of charge transfer in deoxyribonucleic acid (DNA) from a theor...
In this work, we address the phenomenon of charge transport in DNA using a simple, but chemically sp...
In Chap. 4, Koslowski and Cramer address the phenomenon of charge transport in DNA using a simple, b...
A quantum chemistry based Green's function formulation of long-range charge transfer in deoxyribose ...
In this paper, we extend the previously described general model for charge transfer reactions, intro...
AbstractWe study the electronic properties of DNA by way of a tight-binding model applied to four pa...
ABSTRACT We study the electronic properties of DNA by way of a tight-binding model applied to four p...
A semi-empirical Valence-Bond/Hartree–Fock (VB/HF) method is developed to calculate one- and two-ele...
ABSTRACT: The electronic structures of an entire segment of a DNA molecule were calculated in its si...
DNA is a material that has the potential to be used in nanoelectronic devices as an active component...