• DocumentCode
    1117835
  • Title

    A Theoretical Study of the Electrochemical Gate Effect in an STM-Based Biomolecular Transistor

  • Author

    Corni, Stefano

  • Author_Institution
    INFM, Modena
  • Volume
    6
  • Issue
    5
  • fYear
    2007
  • Firstpage
    561
  • Lastpage
    570
  • Abstract
    Electrochemical scanning tunneling microscopy (ECSTM) is gaining popularity as a tool to implement a proof-of-concept single (bio)molecular transistor. The understanding of such systems requires a discussion of the mechanism of the electrochemical current gating, which is intimately related to the electrostatic potential distribution in the tip-substrate gap where the redox active adsorbate is placed. We derive a relation that connects the local standard potential of the redox molecule in the tunneling junction with the applied electrode potentials, and we compare it with previously proposed relations. In particular, we show that a linear dependence of the local standard potential on the applied bias does not necessarily imply a monotonous potential drop between the electrodes. In addition, we calculate the electrostatic potential distribution and the parameters entering the derived relation for ECSTM on a redox metalloprotein (Azurin from P. Aeruginosa), for which experimental results exist. Finally, we give an estimate of the gating efficiency when the ECSTM setup including Azurin is interpreted as a single biomolecular wet transistor, confirming the effectiveness of the electrochemical gating for this system.
  • Keywords
    biomolecular electronics; electric potential; electrochemical electrodes; molecular biophysics; oxidation; proteins; reduction (chemical); scanning tunnelling microscopy; tunnel transistors; Azurin; P. Aeruginosa; STM-based biomolecular wet transistor; electrochemical current gating; electrochemical gate effect; electrochemical scanning tunneling microscopy; electrode potentials; electrostatic potential distribution; monotonous potential drop; redox active adsorbate; redox metalloprotein; redox molecule; tip-substrate gap; tunneling junction; Electrodes; Electrons; Electrostatics; Energy states; FETs; Helium; Microscopy; Molecular electronics; Proteins; Tunneling; Molecular electronics; proteins;
  • fLanguage
    English
  • Journal_Title
    Nanotechnology, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1536-125X
  • Type

    jour

  • DOI
    10.1109/TNANO.2007.905548
  • Filename
    4301383