Field-induced Conductance Switching by Charge-state Alternation in Organometallic Single-Molecule Junctions
arXiv:1609.01200 · doi:10.1038/nnano.2015.255
Abstract
Charge transport through single molecules can be influenced by the charge and spin states of redox-active metal centres placed in the transport pathway. These molecular intrinsic properties are usually addressed by varying the molecules electrochemical and magnetic environment, a procedure that requires complex setups with multiple terminals. Here we show that oxidation and reduction of organometallic compounds containing either Fe, Ru or Mo centres can solely be triggered by the electric field applied to a two-terminal molecular junction. Whereas all compounds exhibit bias-dependent hysteresis, the Mo-containing compound additionally shows an abrupt voltage-induced conductance switching, yielding high to low current ratios exceeding 1000 at voltage stimuli of less than 1.0 V. DFT calculations identify a localized, redox active molecular orbital that is weakly coupled to the electrodes and closely aligned with the Fermi energy of the leads because of the spin-polarised ground state unique to the Mo centre. This situation opens an additional slow and incoherent hopping channel for transport, triggering a transient charging effect of the entire molecule and a strong hysteresis with unprecedented high low-to-high current ratios.
9 pages, 4 figures
References in corpus (4)
- Mechanically-Controlled Binary Conductance Switching of a Single-Molecule Junction
- Magnetoresistance through a single molecule
- Molecular switch controlled by pulsed bias voltages
- A density functional theory based direct comparison of coherent tunnelling and electron hopping in redox-active single molecule junctions
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- Molecular Switching Operation in Gate Constricted Interface of MoS and hBN Heterostructure
- A Density Functional Theory Based Electron Transport Study of Coherent Tunneling Through Cyclic Molecules Containing Ru and Os as Redox Active Centers