Exploring quantum interference in heteroatom-substituted graphene-like molecules
arXiv:1602.05215 · doi:10.1039/c6nr01907b
Abstract
If design principles for controlling quantum interference in single molecules could be elucidated and verified, then this will lay the foundations for exploiting such effects in nanoscale devices and thin-film materials.When the core of a graphene-like polyaromatic hydrocarbon (PAH) is weakly coupled to external electrodes by atoms i and j, the single-molecule electrical conductance sigma-ij depends on the choice of connecting atoms i,j. Furthermore, conductance ratios sigma-ij/sigma-lm corresponding to different connectivities i,j and l,m are determined by quantum interference within the PAH core. In this paper, we examine how such conductance ratios change when one of the carbon atoms within the "parent" PAH core is replaced by a heteroatom to yield a "daughter" molecule. For bipartite parental cores, in which odd-numbered sites are connected to even-numbered sites only, the effect of heteroatom substitution onto an odd-numbered site is summarized by the following qualitative rules: (a) When i and j are odd, both parent and daughter have low conductances (b) When i is odd and j is even, or vice versa both parent and daughter have high conductances (c) When i,j are both even, the parent has a low conductance and the daughter a high conductance. These rules are verified by comparison with density-functional calculations on naphthalene, anthracene, pyrene and anthanthrene cores connected via two different anchor groups to gold electrodes.
References in corpus (6)
- Dependence of Single Molecule Junction Conductance on Molecular Conformation
- GOLLUM: a next-generation simulation tool for electron, thermal and spin transport
- Control of electron transport through Fano resonances in molecular wires
- Breakdown of Interference Rules in Azulene, a Non-Alternant Hydrocarbon
- Oligoyne molecular junctions for efficient room temperature thermoelectric power generation
- Comment on "Breakdown of Interference Rules in Azulene, a Nonalternant Hydrocarbon"
Cited by in corpus (8)
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- Enhancing the sensitivity and selectivity of pyrene-based sensors for detection of small gaseous molecules via destructive quantum interference
- Stability of destructive interference antiresonances in electron transport through graphene nanostructures
- Towards gauge unified, supersymmetric hidden strong dynamics
- Magic number theory of superconducting proximity effects and Wigner delay times in graphene-like molecules