Literature DB >> 30721893

High-conductance contacts to functionalized molecular platforms physisorbed on Au(1 1 1).

Torben Jasper-Tönnies1, Aran Garcia-Lekue, Thomas Frederiksen, Sandra Ulrich, Rainer Herges, Richard Berndt.   

Abstract

The conductances of molecules physisorbed to Au(1 1 1) via an extended [Formula: see text] system are probed with the tip of a low-temperature scanning tunneling microscope to maximize the control of the junction geometry. Inert hydrogen, methyl, and reactive propynyl subunits were attached to the platform and stand upright. Because of their different reactivities, either non-bonding (hydrogen and methyl) or bonding (propynyl) tip-molecule contacts are formed. The conductances exhibit little scatter between different experimental runs on different molecules, display distinct evolutions with the tip-subunit distance, and reach contact values of 0.003-0.05 G 0. For equal tip-platform distances the contact conductance of the inert methyl is close to that of the reactive propynyl. Under further compression, the inert species, hydrogen and methyl, are found to be better conductors. This shows that the current flow is not directly correlated with the chemical interaction. Atomistic calculations for the methyl case reproduce the conductance evolution and reveal the role of the junction geometry, forces and orbital symmetries at the tip-molecule interface. The current flow is controlled by orbital symmetries at the electrode interfaces rather than by the energy alignment of the molecular orbitals and electrode states. Functionalized molecular platforms thus open new ways to control and engineer electron conduction through metal-molecule interfaces at the atomic level.

Entities:  

Year:  2019        PMID: 30721893     DOI: 10.1088/1361-648X/ab0489

Source DB:  PubMed          Journal:  J Phys Condens Matter        ISSN: 0953-8984            Impact factor:   2.333


  1 in total

1.  Azimuthal Dipolar Rotor Arrays on Surfaces.

Authors:  Sebastian Hamer; Jan-Simon von Glasenapp; Fynn Röhricht; Chao Li; Richard Berndt; Rainer Herges
Journal:  Chemistry       Date:  2021-11-05       Impact factor: 5.020

  1 in total

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