• DocumentCode
    995027
  • Title

    Scanning probe technology in metalloprotein and biomolecular electronics

  • Author

    Davis, J.J. ; Morgan, D.A. ; Wrathmell, C.L. ; Zhao, A.

  • Author_Institution
    Dept. of Chem., Univ. of Oxford, UK
  • Volume
    151
  • Issue
    2
  • fYear
    2004
  • fDate
    4/1/2004 12:00:00 AM
  • Firstpage
    37
  • Lastpage
    47
  • Abstract
    The interfacing of man-made electronic components with specifically-folded biomacromolecules lies central not only to the development of sensory interfaces and potential new molecular-scale devices, but also enables us to analyse processes of great biological importance in a refined and controllable manner. Recent advances in both available technology, most notably optical and scanning probes in nature, and our understanding of suitable methodologies, have led us to the point where the characteristics of single biological molecules can be interrogated with good levels of reproducibility. We review here the application of scanning probe microscopy to the analysis of and experimentation on biological redox systems. Within this paper the tunnel transport characteristics, as assayed by both scanning tunnelling microscopy (STM) and conducting probe atomic force microscopy (AFM), of single metalloproteins are discussed. In a specific case study the electron transfer characteristics of the blue copper metalloprotein, azurin, are reported. The modulation of these properties under the influence of calibratable compressional force has also been examined in some detail. Work such as this enables one to reproducibly establish the conductance, barrier height, environmental sensitivity and electromechanical properties of these molecules.
  • Keywords
    atomic force microscopy; biological techniques; biomolecular electronics; molecular biophysics; oxidation; proteins; reduction (chemical); reviews; scanning tunnelling microscopy; tunnelling; azurin; barrier height; biological redox systems; biomolecular electronics; blue copper metalloprotein; calibratable compressional force; conductance; conducting probe atomic force microscopy; electromechanical properties; electron transfer; environmental sensitivity; man-made electronic components; molecular-scale devices; scanning probe microscopy; scanning tunnelling microscopy; sensory interfaces; tunnel transport characteristics;
  • fLanguage
    English
  • Journal_Title
    Nanobiotechnology, IEE Proceedings -
  • Publisher
    iet
  • ISSN
    1478-1581
  • Type

    jour

  • DOI
    10.1049/ip-nbt:20040504
  • Filename
    1301799