Comprehensive suppression of single-molecule conductance using destructive σ-interference.

Garner, Marc H; Li, Haixing; Chen, Yan; Su, Timothy A; Shangguan, Zhichun; Paley, Daniel W; Liu, Taifeng; Ng, Fay et al. · Nature · 2018

basic_science · Level V

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Abstract

The tunnelling of electrons through molecules (and through any nanoscale insulating and dielectric material <sup>1</sup> ) shows exponential attenuation with increasing length <sup>2</sup> , a length dependence that is reflected in the ability of the electrons to carry an electrical current. It was recently demonstrated<sup>3-5</sup> that coherent tunnelling through a molecular junction can also be suppressed by destructive quantum interference <sup>6</sup> , a mechanism that is not length-dependent. For the carbon-based molecules studied previously, cancelling all transmission channels would involve the suppression of contributions to the current from both the π-orbital and σ-orbital systems. Previous reports of destructive interference have demonstrated a decrease in transmission only through the π-channel. Here we report a saturated silicon-based molecule with a functionalized bicyclo[2.2.2]octasilane moiety that exhibits destructive quantum interference in its σ-system. Although molecular silicon typically forms conducting wires <sup>7</sup> , we use a combination of conductance measurements and ab initio calculations to show that destructive σ-interference, achieved here by locking the silicon-silicon bonds into eclipsed conformations within a bicyclic molecular framework, can yield extremely insulating molecules less than a nanometre in length. Our molecules also exhibit an unusually high thermopower (0.97 millivolts per kelvin), which is a further experimental signature of the suppression of all tunnelling paths by destructive interference: calculations indicate that the central bicyclo[2.2.2]octasilane unit is rendered less conductive than the empty space it occupies. The molecular design presented here provides a proof-of-concept for a quantum-interference-based approach to single-molecule insulators.