Distinguishing Lead and Molecule States in Graphene-Based Single-Electron Transistors.

Gehring, Pascal; Sowa, Jakub K; Cremers, Jonathan; Wu, Qingqing; Sadeghi, Hatef; Sheng, Yuewen; Warner, Jamie H; Lambert, Colin J et al. · ACS Nano · 2017

basic_science · Level V

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Abstract

Graphene provides a two-dimensional platform for contacting individual molecules, which enables transport spectroscopy of molecular orbital, spin, and vibrational states. Here we report single-electron tunneling through a molecule that has been anchored to two graphene leads. Quantum interference within the graphene leads gives rise to an energy-dependent transmission and fluctuations in the sequential tunnel-rates. The lead states are electrostatically tuned by a global back-gate, resulting in a distinct pattern of varying intensity in the measured conductance maps. This pattern could potentially obscure transport features that are intrinsic to the molecule under investigation. Using ensemble averaged magneto-conductance measurements, lead and molecule states are disentangled, enabling spectroscopic investigation of the single molecule.