Efficient Fabrication of Stable Graphene-Molecule-Graphene Single-Molecule Junctions at Room Temperature.

Chemphyschem

Centre for Nanoscale Science and Technology, Key Laboratory for the Physics and Chemistry of Nanodevices, Department of Electronics, Peking University, Beijing, 100871, China.

Published: September 2018

AI Article Synopsis

  • A novel method is introduced for creating stable single-molecule junctions using single-layer graphene at room temperature, achieving over 97% yield in under a minute.
  • This approach involves creating ultra-narrow gaps in graphene with a quick electroburning technique and pre-patterning the structures to reduce defects.
  • The formed junctions, utilizing amino-functionalized molecules, showed strong electronic transport properties and stability for weeks, indicating the practicality of graphene nano-electrodes for single-molecule device applications.

Article Abstract

We present a robust approach to fabricate stable single-molecule junctions at room temperature using single-layer graphene as nanoelectrodes. Molecular scale nano-gaps in graphene were generated using an optimized fast-speed feedback-controlled electroburning process. This process shortened the time for creating a single nano-gap to be less than one minute while keeping a yield higher than 97 %. To precisely control the gap position and minimize the effects of edge defects and the quantum confinement, extra-narrow grooves were pre-patterned in the graphene structures with oxygen plasma etching. Molecular junctions were formed by bridging the nano-gaps with amino-functionalized hexaphenyl molecules by taking advantage of chemical reactions between the amino groups at the two ends of the molecules and the carboxyl groups at the edges of graphene electrodes. Electronic transport measurements and transition voltage spectroscopy analysis verified the formation of single-molecule devices. First-principles quantum transport calculations show that the highest occupied molecular orbital of hexaphenyl is closer to the Fermi level of the graphene electrodes and thus the devices exhibit a hole-type transport characteristics. Some of these molecular devices remained stable up to four weeks, highlighting the potential of graphene nano-electrodes in the fabrication of stable single-molecule devices at room temperature.

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Source
http://dx.doi.org/10.1002/cphc.201800220DOI Listing

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