Literature DB >> 21694429

Electrochemical gate-controlled electron transport of redox-active single perylene bisimide molecular junctions.

C Li1, A Mishchenko, Z Li, I Pobelov, Th Wandlowski, X Q Li, F Würthner, A Bagrets, F Evers.   

Abstract

We report a scanning tunneling microscopy (STM) experiment in an electrochemical environment which studies a prototype molecular switch. The target molecules were perylene tetracarboxylic acid bisimides modified with pyridine (P-PBI) and methylthiol (T-PBI) linker groups and with bulky tert-butyl-phenoxy substituents in the bay area. At a fixed bias voltage, we can control the transport current through a symmetric molecular wire Au|P-PBI(T-PBI)|Au by variation of the electrochemical 'gate' potential. The current increases by up to two orders of magnitude. The conductances of the P-PBI junctions are typically a factor 3 larger than those of T-PBI. A theoretical analysis explains this effect as a consequence of shifting the lowest unoccupied perylene level (LUMO) in or out of the bias window when tuning the electrochemical gate potential VG. The difference in on/off ratios reflects the variation of hybridization of the LUMO with the electrode states with the anchor groups. I(T)-E(S(T)) curves of asymmetric molecular junctions formed between a bare Au STM tip and a T-PBI (P-PBI) modified Au(111) electrode in an aqueous electrolyte exhibit a pronounced maximum in the tunneling current at -0.740, which is close to the formal potential of the surface-confined molecules. The experimental data were explained by a sequential two-step electron transfer process.

Entities:  

Year:  2008        PMID: 21694429     DOI: 10.1088/0953-8984/20/37/374122

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


  1 in total

1.  Long-range electron tunnelling in oligo-porphyrin molecular wires.

Authors:  Gita Sedghi; Víctor M García-Suárez; Louisa J Esdaile; Harry L Anderson; Colin J Lambert; Santiago Martín; Donald Bethell; Simon J Higgins; Martin Elliott; Neil Bennett; J Emyr Macdonald; Richard J Nichols
Journal:  Nat Nanotechnol       Date:  2011-07-31       Impact factor: 39.213

  1 in total

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