Optical probes of molecules as nano-mechanical switches

Author:

Kos DeanORCID,Di Martino GiulianaORCID,Boehmke Alexandra,de Nijs BartORCID,Berta DénesORCID,Földes Tamás,Sangtarash Sara,Rosta Edina,Sadeghi HatefORCID,Baumberg Jeremy J.ORCID

Abstract

AbstractMolecular electronics promises a new generation of ultralow-energy information technologies, based around functional molecular junctions. Here, we report optical probing that exploits a gold nanoparticle in a plasmonic nanocavity geometry used as one terminal of a well-defined molecular junction, deposited as a self-assembled molecular monolayer on flat gold. A conductive transparent cantilever electrically contacts individual nanoparticles while maintaining optical access to the molecular junction. Optical readout of molecular structure in the junction reveals ultralow-energy switching of ∼50 zJ, from a nano-electromechanical torsion spring at the single molecule level. Real-time Raman measurements show these electronic device characteristics are directly affected by this molecular torsion, which can be explained using a simple circuit model based on junction capacitances, confirmed by density functional theory calculations. This nanomechanical degree of freedom is normally invisible and ignored in electrical transport measurements but is vital to the design and exploitation of molecules as quantum-coherent electronic nanodevices.

Funder

RCUK | Engineering and Physical Sciences Research Council

EC | Horizon 2020 Framework Programme

Leverhulme Trust

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry

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