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      Electron tunnelling in self-assembled monolayers

      , ,
      Reports on Progress in Physics
      IOP Publishing

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          Most cited references47

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          Measurement of single-molecule resistance by repeated formation of molecular junctions.

          The conductance of a single molecule connected to two gold electrodes was determined by repeatedly forming thousands of gold-molecule-gold junctions. Conductance histograms revealed well-defined peaks at integer multiples of a fundamental conductance value, which was used to identify the conductance of a single molecule. The resistances near zero bias were 10.5 +/- 0.5, 51 +/- 5, 630 +/- 50, and 1.3 +/- 0.1 megohms for hexanedithiol, octanedithiol, decanedithiol, and 4,4' bipyridine, respectively. The tunneling decay constant (betaN) for N-alkanedithiols was 1.0 +/- 0.1 per carbon atom and was weakly dependent on the applied bias. The resistance and betaN values are consistent with first-principles calculations.
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            Electron transport in molecular wire junctions.

            Molecular conductance junctions are structures in which single molecules or small groups of molecules conduct electrical current between two electrodes. In such junctions, the connection between the molecule and the electrodes greatly affects the current-voltage characteristics. Despite several experimental and theoretical advances, including the understanding of simple systems, there is still limited correspondence between experimental and theoretical studies of these systems.
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              Large On-Off Ratios and Negative Differential Resistance in a Molecular Electronic Device.

              Chen, Reed, Rawlett (1999)
              A molecule containing a nitroamine redox center (2'-amino-4-ethynylphenyl-4'-ethynylphenyl-5'-nitro-1-benzenethiol) was used in the active self-assembled monolayer in an electronic device. Current-voltage measurements of the device exhibited negative differential resistance and an on-off peak-to-valley ratio in excess of 1000:1.
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                Author and article information

                Journal
                Reports on Progress in Physics
                Rep. Prog. Phys.
                IOP Publishing
                0034-4885
                1361-6633
                March 01 2005
                March 01 2005
                : 68
                : 3
                : 523-544
                Article
                10.1088/0034-4885/68/3/R01
                b3ccd1fa-7e8b-4961-87c8-0320e8a99617
                © 2005
                History

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