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

机译:区分基于石墨烯的单电子晶体管中的铅和分子状态

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摘要

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.
机译:Graphene提供了一种用于接触单个分子的二维平台,其能够进行分子轨道,旋转和振动状态的传输光谱。 在这里,我们通过已锚固到两个石墨烯引线的分子报告单电子隧道。 石墨烯导线内的量子干涉产生了顺序隧道速率的能量依赖传输和波动。 通过全局后栅静电调谐铅状态,导致测量的电导图中的不同强度的不同模式。 这种模式可能模糊的是在调查中的分子内在的传输特征。 使用集合平均磁电导测量,铅和分子状态被解开,使能量分子进行光谱研究。

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